Current protection apparatus and method
Summary by NHIP
Sequential Current Sampling Protection
The apparatus samples a first current value, then a second value and multiple intermediate values during a predetermined time period after the initial sample. A processing unit compares all received current values against a predetermined limit to generate corresponding compare results for controlling a switching circuit.
Claim Score by NHIP
Abstract
A current protection apparatus (200) and current protection method (1000) that may include programmable current protection characteristics has been disclosed. A current protection apparatus (200) may include a power distribution unit (230) with power distribution outlets (PDO-1 to PDO-8), each having a corresponding circuit breaker unit (CB1 to CB8). Each circuit breaker unit (CB1 to CB8) may operate in response to a processing unit (236) that can sample current values flowing between a respective power distribution outlet (PDO-1 to PDO-8) and a load device (LD1 to LD8). Processing unit 236 may operate under control of software stored on a memory (238) to control a switching circuit (320). Current protection characteristics for each circuit breaker unit may be independently programmed and/or altered by a user, for example by way of a computer (250). In this way, each power distribution outlet (PDO-1 to PDO-8) may have current rating characteristics independently provided for a particular load device (LD1 to LD8).

Term
0.3 yearsleft in the term
Expires 9 January 2027, including 235 days of term adjustment.
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11 claims: 2 independent, 9 dependent
- 1Broadest claimClaim Score 25, narrow(NHIP)A current protection apparatus, comprising:a current sampling circuit that samples a first current value consisting of a current flowing from a power source to a first load device;a processing unit coupled to receive the first current value and controlled by a software program to compare the first current value with a predetermined current limit value to generate a first compare result;and a switching circuit coupled between the power source and the first load device, wherein the current sampling circuit samples a second current value consisting of the current flowing from the power source to the first load device a first predetermined time period after the first current value is sampled;the processing unit receives the second current value and is controlled by the software program to compare the second current value with the predetermined current limit value to generate a second compare result;the current sampling circuit samples a plurality of intermediate current values consisting of the current flowing from the power source to the first load device during the first predetermined time period after the first current value is sampled;the processing unit receives the plurality of intermediate current values and is controlled by the software program to compare the plurality of intermediate current values with the predetermined current limit value to generate a plurality of intermediate compare results;and the switching circuit interrupts the current flowing from the power source to the first load device in response to at least the first compare result indicating that the first current value exceeds the predetermined current limit value, the plurality of intermediate compare results indicating each of the plurality of intermediate current values exceeds the predetermined current limit value, and the second compare result indicating that the second current value exceeds the predetermined current limit value and keeps the current flowing from the power source to the first load device uninterrupted when at least one of the plurality of intermediate current values is less than the predetermined current limit value.
- 7A current protection apparatus for a power distribution unit, comprising:a current sampling circuit that samples a plurality of first current values, each first current value corresponding to a current flowing from one of a plurality of power distribution outlets to a corresponding one of a plurality of load devices;a processing unit coupled to receive the plurality of first current values and controlled by a software program to compare each of the plurality of first current values with a corresponding one of a plurality of predetermined current limit values to generate a plurality of first compare results;and a plurality of switching circuits, each one of the plurality of switching circuits coupled between one of the plurality of power distribution outlets and a corresponding one of the plurality of load devices, each one of the plurality of switching devices automatically interrupting the corresponding one of the plurality of currents flowing between one of the plurality of power distribution outlets and the corresponding one of the plurality of load devices in response to at least the corresponding one of the plurality of first compare results indicating that the corresponding one of the plurality of first current values is greater than the corresponding one of the plurality of predetermined current limit values wherein the plurality of power distribution outlets are divided into a plurality of power distribution outlet banks, each power distribution bank including a bank current value essentially equal to a summation of the plurality of current values of the plurality of power distribution outlets in the corresponding power distribution bank;the processing unit compares each of the plurality of bank current values with a corresponding one of a plurality of predetermined bank current limit values;and the corresponding ones of the plurality of switching circuits interrupt the current flowing between each power distribution outlet and each load device in the corresponding power distribution bank if the corresponding bank current value is greater than the corresponding predetermined bank current limit value.
Independent claims2
283 paragraphs in 7 sections, as filed
CROSS REFERENCE TO RELATED APPLICATIONS
p-0002This application claims priority from provisional patent application 60/378,342, filed May 6, 2002, U.S. patent application Ser. No. 10/431,333, filed May 6, 2003, and U.S. patent application Ser. No. 10/870,853 filed Jun. 16, 2004, all of which the contents are incorporated by reference herein.
TECHNICAL FIELD
p-0003The present invention relates generally to a current protection apparatus and more particularly to a current protection apparatus including a programmable characteristic and current protection method.
COPYRIGHT AUTHORIZATION
p-0004A portion of the disclosure of this patent document contains material which is subject to copyright protection. The copyright owner has no objection to the facsimile reproduction by anyone of the patent document or the patent disclosure, as it appears in the Patent and Trademark Office patent file or records, but otherwise reserves all (copyright or mask work) rights whatsoever.
BACKGROUND OF THE INVENTION
p-0005Early in the development of modern networking equipment such as routers, it was realized that at times a particular piece of network equipment might hang or “crash.” In such instances, a human operator often had to intervene by traveling to the location of the equipment and rebooting or power cycling the equipment in order to get that particular piece of equipment working. Power cycling and information about consumed power are also of interest in a number of computer equipment and other equipment settings.
p-0006The discussion of any work, publications, sales, or activity anywhere in this submission, including in any documents submitted with this application, shall not be taken as an admission that any such work constitutes prior art. The discussion of any activity, work, or publication herein is not an admission that such activity, work, or publication existed or was known in any particular jurisdiction.
p-0007A power distribution unit (PDU) can be used to provide power management to a plurality of devices. Referring now to <figref idrefs="DRAWINGS">FIG. 30</figref>, a block schematic diagram of an apparatus including a conventional PDU for power management to a plurality of devices is set forth and given the general reference character <b>100</b>.
p-0008Apparatus <b>100</b> includes a conventional PDU <b>130</b> that is connected to a wall outlet <b>110</b> through a power cord <b>120</b> at inlet <b>132</b>. Wall outlet <b>110</b> can be connected to a 120 Volt Alternating Current (120 VAC) as a power supply voltage, as but one example. Conventional PDU <b>130</b> includes eight power distribution outlets (PDO-<b>1</b> to PDO-<b>8</b>). Each power distribution outlet (PDO-<b>1</b> to PDO-<b>8</b>) can be connected to a respective load device (LD<b>1</b> to LD<b>8</b>) through a respective power cord (PC-<b>1</b> to PC-<b>8</b>).
p-0009Conventional PDU <b>130</b> also includes a circuit breaker <b>134</b>. Circuit breaker <b>134</b> is connected between the inlet <b>132</b> and the power distribution outlets (PDO-<b>1</b> to PDO-<b>8</b>). In this way, the sum of the currents flowing from each power distribution outlet (PDO-<b>1</b> to PDO-<b>8</b>) to the respective load device (LD<b>1</b> to LD<b>8</b>) flows through circuit breaker <b>134</b>.
p-0010Circuit breaker <b>134</b> “trips” or becomes an open circuit when the current exceeds the overcurrent rating of the circuit breaker <b>134</b>. When the circuit breaker <b>134</b> trips, the power supply voltage is disconnected from all of the power distribution outlets (PDO-<b>1</b> to PDO-<b>8</b>) and all of the respective load devices (LD<b>1</b> to LD<b>8</b>). In this way, even if, for example, load device LD<b>3</b> is causing the overcurrent condition, all of the other load devices (LD<b>1</b>, LD<b>2</b> and LD<b>4</b> to LD<b>8</b>) also are disconnected from the power supply voltage.
p-0011Conventional PDU <b>130</b> has various drawbacks. For example, in the above-mentioned situation load device LD<b>3</b> may not be a system critical device. However, load device LD<b>4</b> may be system critical. In this case, a system critical load device LD<b>4</b>, such as a network server for example, is disconnected from the power supply when a less critical device is causing the overcurrent condition.
p-0012Another drawback for conventional PDU <b>130</b> is where one of the load devices, for example load device LD<b>5</b>, needs protection at a current lower than the overcurrent rating of circuit breaker <b>134</b>. For example, load device LD<b>5</b> could be connected to power distribution outlet PDO-<b>5</b> with a power cord that is rated to only 5 amps, but circuit breaker <b>134</b> can have an overcurrent rating of 15 amps. In this case, load device LD<b>5</b> may have a current exceeding 5 amps without causing circuit breaker <b>134</b> to trip if the other load devices (LD<b>1</b> to LD<b>4</b> or LD<b>6</b> to LD<b>8</b>) collectively draw less than 10 amps. Of course, in the case where only load device LD<b>5</b> is connected to conventional power distribution unit <b>130</b>, load device LD<b>5</b> would not have sufficient overcurrent protection under any condition.
p-0013Another drawback for conventional PDU <b>130</b> occurs when there is a temporary current surge in one of the load devices (LD<b>1</b> to LD<b>8</b>). In this case, circuit breaker <b>134</b> can trip even though the current surge will not cause an electrical failure to the offending load device (LD<b>1</b> to LD<b>8</b>). As previously mentioned, when circuit breaker <b>134</b> trips, all the load devices (LD<b>1</b> to LD<b>8</b>) lose power.
p-0014In view of the above discussion, it would be desirable to provide a current protection apparatus that may provide individual and/or customized current protection to a load device.
p-0015It would also be desirable to provide a method of current protection that may provide individual and/or customized current protection to a load device.
p-0016It would also be desirable to provide a current protection apparatus and method of current protection that may provide protection from current surges that may damage an individual load device without unwarranted protection against a temporary current surge that may not be sufficient to cause an electrical failure of a load device. It would further be desirable to provide such protection in a power distribution unit.
p-0017It would also be desirable to provide a current protection apparatus and method of current protection for a power distribution unit that may provide individual and customized current protection to each load device connected to a power distribution outlet.
p-0018Additionally, a method, system, and apparatus for remote power management and monitoring has been set forth in commonly owned and co-pending U.S. patent application Ser. No. 10/625,837 filed Jul. 22, 2003, U.S. patent application Ser. No. 10/431,333 filed May 6, 2003, U.S. Provisional Patent Application Ser. No. 60/378,342 filed May 6, 2002, Canadian Patent Application Number 2,428,285 filed May 6, 2003, and European Patent Application Number 03252833.3 filed May 6, 2003. The full disclosures of these patent applications are incorporated by reference.
SUMMARY OF THE INVENTION
p-0019According to the present embodiments, a current protection apparatus and current protection method that may include programmable current protection characteristics is disclosed. A current protection apparatus may include a power distribution unit. A power distribution unit may include power distribution outlets, each having a corresponding circuit breaker unit. Each circuit breaker unit may operate in response to a processing unit to sample current values corresponding to a current flowing between a respective power distribution outlet and a load device. A processing unit may operate under control of software stored in a memory to control a switching circuit. Current protection characteristics for each circuit breaker unit may be independently programmed and/or altered by a user, for example by way of a computer. In this way, each power distribution outlet may have current rating characteristics independently provided for a particular load device.
p-0020According to one aspect of the embodiments, a current protection method may include the steps of sampling a current value of a current flowing from a power source to a load device for at least one current characteristic and interrupting the current flowing from the power source to the load device according to a comparison between the at least one current characteristic and at least one programmable limit.
p-0021According to another aspect of the embodiments, the at least one programmable limit may be a predetermined current limit value.
p-0022According to another aspect of the embodiments, the at least one programmable limit may include a predetermined time period and the current value may exceed a predetermined current limit value for essentially a predetermined time period.
p-0023According to another aspect of the embodiments, the step of sampling a current value of a current flowing from a power source to a load device for at least one current characteristic may be repeated a plurality of times during a predetermined time period.
p-0024According to another aspect of the embodiments, the step of sampling a current value may include taking current readings of the current flowing from the power source to the load device and performing parametric calculations to provide the current value.
p-0025According to another aspect of the embodiments, parametric calculations may include peak current root mean square current, and crest factor harmonic current.
p-0026According to another aspect of the embodiments, a current protection method may include the steps of sampling a first current value of a first current flowing from a first power distribution outlet to a first load device and a second current value of a second current flowing from a second power distribution outlet to a second load device, comparing the first current value with a first predetermined current limit value and a second current value with a second predetermined current limit value, and interrupting the first current flowing from the first power distribution outlet to the first load device in response to the first current value exceeding the first predetermined current limit value and interrupting the second current flowing from the second power distribution outlet to the second load device in response to the second current value exceeding the second predetermined current limit value.
p-0027According to another aspect of the embodiments, the first predetermined current limit value and the second predetermined current limit value are programmable.
p-0028According to another aspect of the embodiments, the step of comparing the first current value with a first predetermined current value and the second current value with a second predetermined current limit value may be performed with software.
p-0029According to another aspect of the embodiments, when the step of comparing the first current value results in the first current value exceeding the first predetermined current limit value, repeating the step of sampling the first current value and the step of comparing the first current value with the first predetermined current limit value after a first predetermined time period. When the step of comparing the second current value results in the second current value exceeding the second predetermined current limit value, repeating the step of sampling the second current value and the step of comparing the second current value with the second predetermined current limit value after a second predetermined time period. The first current flowing from the first power distribution outlet is interrupted only when the second step of comparing results in the first current value exceeding the first predetermined current limit value and the second current flowing from the second power distribution outlet is interrupted only when the second step of comparing results in the second current value exceeding the second predetermined current limit value.
p-0030According to another aspect of the embodiments, the first predetermined time period and the second predetermined time period may be the same.
p-0031According to another aspect of the embodiments, the first predetermined time period and the second predetermined time period may be different.
p-0032According to another aspect of the embodiments, the step of comparing the first current value with the first predetermined current limit value after the first predetermined time period and the step of sampling the second current value and the step of comparing the second current value with the second predetermined current limit value after the second predetermined time period may be performed with software.
p-0033According to another aspect of the embodiments, a current protection method for a power distribution unit may include the steps of sampling a plurality of current values for a plurality of currents, each of the plurality of currents comprising a current flowing between one of a plurality of power distribution outlets and a corresponding load device, comparing each of the plurality of current values with a corresponding one of a plurality of predetermined current limit values, and interrupting the current flowing between the corresponding power distribution outlet and the corresponding load device if the corresponding current value is greater than the corresponding predetermined current limit value.
p-0034According to another aspect of the embodiments, each of the plurality of predetermined current limit values may be programmable.
p-0035According to another aspect of the embodiments, the step of comparing each of the plurality of current values with the corresponding one of the plurality of predetermined current limit values may be performed with software.
p-0036According to another aspect of the embodiments, a current protection computer program embodied on a computer readable media may include: a reading code portion, for reading a plurality of current values for a plurality of currents, each of the plurality of currents comprising a current flowing between one of a plurality of power distribution outlets and a corresponding load device; and a comparing code portion, for comparing each of the plurality of current values with a corresponding one of a plurality of predetermined current limit values and providing an interrupt command for interrupting the current flowing between the corresponding power distribution outlet and the corresponding load device if the corresponding current value is greater than the corresponding predetermined current limit value.
p-0037According to another aspect of the embodiments, the reading code portion may read the plurality of current values during a predetermined time period and the comparing code portion may provide the interrupt command if the corresponding current value is greater than the corresponding predetermined current value for essentially the predetermined time period.
p-0038According to another aspect of the embodiments, a current protection apparatus may include a current sampling circuit, a processing unit, and a switching circuit. The current sampling circuit may sample a first current value of a current flowing from a power source to a first load device. A processing unit may receive the first current value and may be controlled by a software program to compare the first current value with a predetermined current limit value to generate a first compare result. A switching circuit may be coupled between the power source and the first load device. The switching device may interrupt the current flowing from the power source to the load device in response to at least the first compare result indicating that the first current value may exceed the predetermined current limit value.
p-0039According to another aspect of the embodiments, the current sampling circuit may sample a second current value of the current flowing from the power source to the first load device a first predetermined time period after the first current value is sampled. The processing unit may receive the second current value and may be controlled by the software program to compare the second current value with the predetermined current limit value to generate a second compare result. The switching circuit may interrupt the current flowing from the power source to the load device in response to the second compare result indicating that the second current value exceeds the predetermined current limit value.
p-0040According to another aspect of the embodiments, the current sampling circuit may sample a plurality of intermediate current values of the current flowing from the power source to the first load device during the first predetermined time period after the first current value is sampled. The processing unit may receive the plurality of intermediate current values and may be controlled by the software program to compare the plurality of intermediate current values with the predetermined current limit value to generate a plurality of intermediate compare results. The switching circuit may interrupt the current flowing form the power source to the load device in response to the plurality of intermediate compare results indicating each of the plurality of intermediate current values exceeds the predetermined current limit value and to the second compare result indicating that the second current value exceeds the predetermined current limit value.
p-0041According to another aspect of the embodiments, the current sampling circuit may include an analog to digital converter.
p-0042According to another aspect of the embodiments, the switching circuit may include a mechanical relay or a solid state relay.
p-0043According to another aspect of the embodiments, the current sampling circuit may include a current sensing circuit, such as an isolation step down transformer, a Hall effect device, a sense resistor, or a magnetometer.
p-0044According to another aspect of the embodiments, a current protection apparatus for a power distribution unit may include a current sampling circuit, a processing unit, a first switching circuit, and a second switching circuit. A current sampling circuit may sample a first current value of a first current flowing from a first power distribution outlet and a first load device and a second current flowing from a second power distribution outlet and a second load device. A processing unit may receive the first current value and the second current value. The processing unit may be controlled by a software program to compare the first current value with a first predetermined current limit value to generate a first comparison result and compare a second current value with a second predetermined current limit value to generate a second comparison result. The first switching circuit may be coupled between the first power distribution outlet and the first load device. The first switching circuit may interrupt the first current flowing from the first power distribution outlet to the first load device in response to at least the first compare result indicating that the first current value exceeds the first predetermined current limit value. The second switching circuit may be coupled between the second power distribution outlet and the second load device. The second switching circuit may interrupt the second current flowing from the second power distribution outlet to the second load device in response to at least the second compare result indicating that the second current value exceeds the second predetermined current limit value.
p-0045According to another aspect of the embodiments, the current sampling circuit may sample a third current value of the current flowing from the first power distribution outlet to the first load device a first predetermined time period after the first current value is sampled when the first current value exceeds the first predetermined current limit value and may sample a fourth current value of the current flowing from the second power distribution outlet to the second load device a second predetermined time period after the second current value is sampled when the second current value exceeds the second predetermined current limit value. The processing unit may receive the third current value if the first current value exceeds the first predetermined current limit value and may be controlled by the software program to compare the third current value with the first predetermined current limit value to generate a third comparison result and may receive the fourth current value if the second current value exceeds the second predetermined current limit value and may be controlled by the software program to compare the fourth current value with the second predetermined current limit value to generate a fourth comparison result. The first switching circuit may interrupt the first current flowing from the first power distribution outlet to the first load device in response to the third compare result indicating that the third current value exceeds the first predetermined current limit value. The second switching circuit may interrupt the second current flowing from the second power distribution outlet to the second load device in response to the fourth compare result indicating that the fourth current value exceeds the second predetermined current limit value.
p-0046According to another aspect of the embodiments, the power distribution unit may include the first power distribution outlet and the second power distribution outlet.
p-0047According to another aspect of the embodiments, a current protection apparatus for a power distribution unit may include a current sampling circuit, a processing unit, and a plurality of switching circuits. The current sampling circuit may sample a plurality of first current values, each first current value corresponding to a current flowing from one of a plurality of power distribution outlets to a corresponding one of a plurality of load devices. The processing unit may receive the plurality of first current values and may be controlled by a software program to compare each of the plurality of first current values with a corresponding one of a plurality of predetermined current limit values to generate a plurality of first compare results. Each one of the plurality of switching circuits may be coupled between one of the plurality of power distribution outlets and a corresponding one of the plurality of load devices. Each one of the plurality of switching devices may interrupt the corresponding one of the plurality of currents flowing between one of the plurality of power distribution outlets and the corresponding one of the plurality of load devices in response to at least the corresponding one of the plurality of first compare results indicating that the corresponding one of the plurality of first current values is greater than the corresponding one of the plurality of predetermined current limit values.
p-0048According to another aspect of the embodiments, when the corresponding one of the plurality of compare results indicates that the corresponding one of the plurality of current values is greater than the corresponding one of the plurality of current values, the current sampling circuit may sample at least a second current value corresponding to the current flowing from the one of the plurality of power distribution outlets to the corresponding one of the plurality of load devices a predetermined time period after the sampling of the corresponding first current value. The processing unit may be coupled to receive the at least second current value and may be controlled by the software program to compare the at least second current value with the corresponding one of a plurality of predetermined current limit values to generate a second compare result. The corresponding one of the plurality of switching devices may interrupt the corresponding one of the plurality of currents flowing between one of the plurality of power distribution outlets and the corresponding one of the plurality of load devices in response to at least the second compare result indicating that the second current value is greater than the corresponding one of the plurality of predetermined current limit values.
p-0049According to another aspect of the embodiments, the power distribution unit may include the plurality of power distribution outlets, the current sampling circuit, the processing unit, and the plurality of switching circuits.
p-0050The present invention relates to a method and/or system and/or apparatus for providing new capabilities in power supply and/or power cycling management. In specific embodiments, the invention involves a method and/or system and/or apparatus for remotely managing and monitoring a power supply over two or more different interfaces including, for example, a telephone interface and/or a network-based (e.g., HTTP, SNMP) interface and/or a serial interface. In further embodiments, the invention involves one or more methods that may be implemented using a data handling device or system, such as a computer or other information enabled device. In further embodiments, the invention involves methods and/or systems for power management over a communication network and/or telephone network.
p-0051Various strategies have been proposed for performing remote power switching and/or management and/or performing intelligent scheduling of the turning on and turning off of power cycling. According to specific embodiments, the present invention is involved with methods and/or systems and/or devices that can be used together or independently to monitor and/or control power supplies. In specific embodiments, the present invention can be understood as involving new methods related to power management.
p-0052A smart power supply according to specific embodiments of the invention further includes one or more novel features such as: individual current monitoring of power outlets; user adjustable stagger starting and/or outlet scheduling; and text-based menu drive telnet and serial interface.
p-0053The invention and various specific aspects and embodiments will be better understood with reference to the following drawings and detailed descriptions. For purposes of clarity, this discussion refers to devices, methods, and concepts in terms of specific examples. However, the invention and aspects thereof may have applications to a variety of types of devices and systems. It is therefore intended that the invention not be limited except as provided in the attached claims and equivalents.
p-0054Furthermore, it is well known in the art that logic systems and methods such as described herein can include a variety of different components and different functions in a modular fashion. Different embodiments of the invention can include different mixtures of elements and functions and may group various functions as parts of various elements. For purposes of clarity, the invention is described in terms of systems that include many different innovative components and innovative combinations of innovative components and known components. No inference should be taken to limit the invention to combinations containing all of the innovative components listed in any illustrative embodiment in this specification.
p-0055In some of the drawings and detailed descriptions below, the present invention is described in terms of the important independent embodiment of a system operating on a digital data network. This should not be taken to limit the invention, which, using the teachings provided herein, can be applied to other situations, such as cable television networks, wireless networks, etc. Furthermore, in some aspects, the present invention is described in terms of client/server systems. A number of computing systems and computing architectures are described in the art as client/server art. For the purposes of this description, client/server should be understood to include any architecture or configuration wherein an element acting as a client accesses a remote and/or separate program or device that is providing the desired service (e.g., a server).
p-0056All references, publications, patents, and patent applications cited herein are hereby incorporated by reference in their entirety for all purposes.
BRIEF DESCRIPTION OF THE DRAWINGS
p-0057<figref idrefs="DRAWINGS">FIG. 1</figref> is a block diagram illustrating an example initial serial interface and method according to specific embodiments of the present invention.
p-0058<figref idrefs="DRAWINGS">FIG. 2</figref> is a block diagram illustrating an example serial settings interface and method according to specific embodiments of the present invention.
p-0059<figref idrefs="DRAWINGS">FIG. 3</figref> is a block diagram illustrating an example serial time/date interface and method according to specific embodiments of the present invention.
p-0060<figref idrefs="DRAWINGS">FIG. 4</figref> is a block diagram illustrating an example serial network interface and method according to specific embodiments of the present invention.
p-0061<figref idrefs="DRAWINGS">FIG. 5</figref> is a block diagram illustrating an example serial telephone interface and method according to specific embodiments of the present invention.
p-0062<figref idrefs="DRAWINGS">FIG. 6</figref> is a block diagram illustrating an example email interface and method according to specific embodiments of the present invention.
p-0063<figref idrefs="DRAWINGS">FIG. 7</figref> is a block diagram illustrating an example user settings interface and method according to specific embodiments of the present invention.
p-0064<figref idrefs="DRAWINGS">FIG. 8</figref> is a block diagram illustrating an example user modification interface and method according to specific embodiments of the present invention.
p-0065<figref idrefs="DRAWINGS">FIG. 9</figref> is a block diagram illustrating an example initial web-based interface and method according to specific embodiments of the present invention.
p-0066<figref idrefs="DRAWINGS">FIG. 10</figref> is a block diagram illustrating an example outlet scheduling interface and method according to specific embodiments of the present invention.
p-0067<figref idrefs="DRAWINGS">FIG. 11</figref> is a block diagram illustrating an example outlet label and properties modification interface and method according to specific embodiments of the present invention.
p-0068<figref idrefs="DRAWINGS">FIG. 12</figref> is a block diagram illustrating an example logging interface and method according to specific embodiments of the present invention.
p-0069<figref idrefs="DRAWINGS">FIG. 13</figref> is a block diagram illustrating an example user interface and method according to specific embodiments of the present invention.
p-0070<figref idrefs="DRAWINGS">FIG. 14</figref> is a block diagram illustrating an example user modification interface and method according to specific embodiments of the present invention.
p-0071<figref idrefs="DRAWINGS">FIG. 15</figref> is a block diagram illustrating an example web-based setup interface and method according to specific embodiments of the present invention.
p-0072<figref idrefs="DRAWINGS">FIG. 16</figref> is a block diagram illustrating an example network identification interface and method according to specific embodiments of the present invention.
p-0073<figref idrefs="DRAWINGS">FIG. 17</figref> is a block diagram illustrating an example telephone setup interface and method according to specific embodiments of the present invention.
p-0074<figref idrefs="DRAWINGS">FIG. 18</figref> is a block diagram illustrating an example logging setup interface and method according to specific embodiments of the present invention.
p-0075<figref idrefs="DRAWINGS">FIG. 19</figref> is a block diagram illustrating an example date/time setup interface and method according to specific embodiments of the present invention.
p-0076<figref idrefs="DRAWINGS">FIG. 20</figref> is a block diagram illustrating an example SNMP setup interface and method according to specific embodiments of the present invention.
p-0077<figref idrefs="DRAWINGS">FIG. 21</figref> is a block diagram illustrating an example options setup interface and method according to specific embodiments of the present invention.
p-0078<figref idrefs="DRAWINGS">FIG. 22A-B</figref> is a diagram illustrating an example of external features and appearance of an example three connector configurable power supply according to specific embodiments of the present invention.
p-0079<figref idrefs="DRAWINGS">FIG. 23A-B</figref> is a diagram illustrating an example of external features and appearance of an example two connector power supply according to specific embodiments of the present invention.
p-0080<figref idrefs="DRAWINGS">FIG. 24</figref> is a block diagram illustrating an example logic modules of a configurable power supply according to specific embodiments of the present invention.
p-0081<figref idrefs="DRAWINGS">FIG. 25A-B</figref> is a block diagram illustrating in further details major functional components of an example configurable power supply according to specific embodiments of the present invention.
p-0082<figref idrefs="DRAWINGS">FIG. 26</figref> is a block diagram illustrating details a microcontroller and other control logic of an example configurable power supply according to specific embodiments of the present invention.
p-0083<figref idrefs="DRAWINGS">FIG. 27</figref> is a block diagram illustrating details of three power relays of an example configurable power supply according to specific embodiments of the present invention.
p-0084<figref idrefs="DRAWINGS">FIG. 28A-B</figref> is a block diagram illustrating details of three current sensors of an example configurable power supply according to specific embodiments of the present invention.
p-0085<figref idrefs="DRAWINGS">FIG. 29</figref> is a block diagram showing a representative example logic device in which various aspects of the present invention may be embodied.
p-0086<figref idrefs="DRAWINGS">FIG. 30</figref> is a block schematic diagram of an apparatus including a conventional power distribution unit (PDU) for power management of a plurality of devices.
p-0087<figref idrefs="DRAWINGS">FIG. 31</figref> is a block schematic diagram of a power distribution apparatus according to an embodiment.
p-0088<figref idrefs="DRAWINGS">FIG. 32</figref> is a circuit schematic diagram of selected portions of a power distribution unit according to an embodiment.
p-0089<figref idrefs="DRAWINGS">FIG. 33</figref> is a user interface for inputting programmable values for a power distribution unit according to an embodiment.
p-0090<figref idrefs="DRAWINGS">FIG. 34</figref> is a user interface for monitoring a power distribution unit according to an embodiment.
p-0091<figref idrefs="DRAWINGS">FIG. 35</figref> is a timing diagram showing a first mode of operation for embodiments of the present invention.
p-0092<figref idrefs="DRAWINGS">FIG. 36</figref> is a timing diagram showing a second mode of operation for embodiments of the present invention.
p-0093<figref idrefs="DRAWINGS">FIG. 37</figref> is a timing diagram showing a third mode of operation for embodiments of the present invention.
p-0094<figref idrefs="DRAWINGS">FIG. 38</figref> is a flow diagram of a method according to one embodiment of the present invention.
p-0095<figref idrefs="DRAWINGS">FIG. 39</figref> is a flow diagram of a method according to another embodiment of the present invention.
DETAILED DESCRIPTION OF THE EMBODIMENTS
p-0096Various embodiments of the present invention will now be described in detail with reference to a number of drawings.
p-0097According to specific embodiments, the present invention can be embodied into an example power switch product, sometimes referred to as the SPS (Smart Power Switch)™ power controller. In specific embodiments, a device built according to specific embodiments of the invention can include three different interfaces, such as, for example, serial, telephone, network. Such embodiments may be referred to here as the TriCom™ or the Tri-n (with n indicated the number of controlled outlets provided and tri indicated the presence of three interfaces, e.g., Tri-8™). In other embodiments, a device built according to specific embodiments of the invention can include two different interfaces, such as, for example, serial/telephone or serial/network or telephone/network. Such embodiments may be referred to herein as the DualCom™ or the Dual-n (with n indicated the number of controlled outlets provided and tri indicated the presence of three interfaces.
h-00081. Interfaces
p-0098Thus, a device according to specific embodiments of the present invention is a power distribution unit that utilizes multiple different modes of communication. In particular embodiments, an SPS can be accessed via serial, Ethernet or direct phone. These interfaces can provide either identical functionality or functionality can vary for different interfaces. For example, through the serial and Ethernet interfaces a user can determine and change the state of each outlet, determine the amount of current that each outlet is drawing, and add or modify scheduled on/off events on outlets. In specific embodiments, all of these functions can be performed in real time.
Serial Interface
p-0099According to specific embodiments of the present invention, a serial interface uses a standard serial port protocol, so that any information devices (e.g., a laptop, personal computer, or digital controller) with an available corn or com-like port can use this direct connection to the SPS. The serial port can also be used as an initial setup port for the unit. The serial interface can also be an USB-type serial interface.
p-0100[Other interfaces according to specific embodiments of the present invention are generally setup before they are used. Generally, after initialization, all the settings can be managed through the serial or Ethernet ports.
Ethernet and Network Interface
p-0101According to specific embodiments of the present invention, an Ethernet port can be utilized either through a text based Telnet session or through an HTTP web interface. The telnet session is similar to the serial interface in that its text based and the menus can generally be very similar or identical. A web interface according to specific embodiments of the invention can, for example, utilize a web browser and the Hypertext Transfer Protocol (HTTP). According to specific embodiments of the present invention, this interface looks and feels different from the others because it is a GUI (graphical user interface). An SNMP interface can be used to control various settings and retrieve various information from the SPS using a standard network management protocol, such as SNMP.
Email Interface
p-0102In addition, the SPS can be configured to email logged events. When this feature is enabled, according to specific embodiments of the present invention, a running log of events is kept and once memory is filled, the log file is sent to a designated email address. Logs can contain information such as the user name, which outlets were changed, time and date of event, and interface and or IP address used.
Telephone Interface
p-0103According to specific embodiments of the present invention, a telephone interface uses a standard analog phone line. This interface is unique in that it uses a few inexpensive parts (such as, for example, a Clare™ CPC5611 as the data access arrangement and a Sunplus™ SPC122a as the voice processor) along with a few other parts. An SPS according to specific embodiments of the present invention has DTMF (Dual Tone Multi-Frequency) decoding, caller id, and voice feedback. Once enabled and attached to a phone line, the unit is now ready to receive and process calls. The SPS can be set to accept all calls, block calls without caller ID enabled, or not accept any incoming calls. The SPS is designed so that if a user uses the phone interface he or she is greeted with a voice prompted menu. The unit will ask for a numeric pass code and then prompt the user for the next command. In specific embodiments, though the SPS has a voice prompted menu, it will only respond to (DTMF) telephone tones as commands and not to speech. In further embodiments, speech recognition can be included in a device according to the invention.
p-0104An embedded hardware arrangement along with its caller id and voice feedback capabilities according to specific embodiments of the present invention has never been utilized in the present combination in any comparable smart power switch or power distribution units. This interface is not included in all embodiments of the invention.
Interface Features and Functions
p-0105According to specific embodiments of the present invention, the serial and/or Ethernet interfaces have the ability to: <ul><li id="ul0001-0001" num="0000"><ul><li id="ul0002-0001" num="0105">change the state of outlets</li><li id="ul0002-0002" num="0106">assign outlet labels</li><li id="ul0002-0003" num="0107">assign outlet schedule</li><li id="ul0002-0004" num="0108">edit and assign users</li><li id="ul0002-0005" num="0109">edit network, email, and phone interface settings.</li></ul></li></ul>
p-0106A wide variety of configurations are possible according to various specific embodiments of the present invention. Some of these configurations are described herein as examples of the invention. Various configuration details are also elements in novel embodiments of the invention.
p-0107According to specific embodiments of the present invention, different features may be accessible from different interfaces. Table 1 below provides an example feature set indicating particular interfaces according to specific embodiments of the present invention.
p-0108<tables id="TABLE-US-00001" num="00001"><table frame="none" colsep="0" rowsep="0" pgwide="1"><tgroup align="left" colsep="0" rowsep="0" cols="6"><colspec colname="offset" colwidth="140pt" align="left" /><colspec colname="1" colwidth="49pt" align="center" /><colspec colname="2" colwidth="56pt" align="center" /><colspec colname="3" colwidth="49pt" align="center" /><colspec colname="4" colwidth="35pt" align="center" /><colspec colname="5" colwidth="28pt" align="center" /><thead><row><entry /><entry namest="offset" nameend="5" rowsep="1">TABLE 1</entry></row><row><entry /><entry namest="offset" nameend="5" align="center" rowsep="1" /></row><row><entry /><entry>TCP/IP-WEB</entry><entry>TCP/IP-TELNET</entry><entry>TCP/IP-SNMP</entry><entry>SERIAL</entry><entry>PHONE</entry></row><row><entry /><entry namest="offset" nameend="5" align="center" rowsep="1" /></row></thead><tbody valign="top"><row><entry /></row></tbody></tgroup><tgroup align="left" colsep="0" rowsep="0" cols="6"><colspec colname="1" colwidth="140pt" align="left" /><colspec colname="2" colwidth="49pt" align="center" /><colspec colname="3" colwidth="56pt" align="center" /><colspec colname="4" colwidth="49pt" align="center" /><colspec colname="5" colwidth="35pt" align="center" /><colspec colname="6" colwidth="28pt" align="center" /><tbody valign="top"><row><entry>Switch outlets on and off</entry><entry>●</entry><entry>●</entry><entry>●</entry><entry>●</entry><entry>●</entry></row><row><entry>Monitor outlet on/off status</entry><entry>●</entry><entry>●</entry><entry>●</entry><entry>●</entry><entry>●</entry></row><row><entry>Monitor current consumption of each outlet</entry><entry>●</entry><entry>●</entry><entry>●</entry><entry>●</entry></row><row><entry>Program outlet schedules</entry><entry>●</entry><entry /><entry>●</entry></row><row><entry>Protect with Password/PIN security</entry><entry>●</entry><entry>●</entry><entry>●</entry><entry>●</entry><entry>●</entry></row><row><entry>Control outlet access with users and passwords</entry><entry>●</entry><entry>●</entry><entry>●</entry><entry>●</entry></row><row><entry>Manage users</entry><entry>●</entry><entry>●</entry><entry>●</entry><entry>●</entry></row><row><entry>Control multiple units from a single</entry><entry /><entry /><entry>●</entry></row><row><entry namest="1" nameend="6" align="center" rowsep="1" /></row></tbody></tgroup></table></tables><br /> Per Outlet Current Monitoring
p-0109According to specific embodiments of the invention, the invention provides per-outlet current monitoring for a plurality of controlled outlets. In particular embodiments, this novel feature is integrated into the user interfaces as provided herein. Per-outlet current monitoring according to specific embodiments of the invention provides a mechanism of remotely managing current load on a individual device basis.
h-0014User-Controllable Scheduling
p-0110According to specific embodiments of the invention, the invention features user-controllable scheduling of each outlet. While other power devices have provided various staged power up operation, the present invention allows a user to flexible manage scheduling features.
Detailed Interface Examples and Operation
p-0111Many different particular arrangements of menus and functions are possible according to specific embodiments of the invention. In order to provide a complete description of example methods of operation according to specific embodiments of the invention, the following describes specific example menus and methods of one or more systems according to the invention.
Example Serial Connection Interfaces
p-0112In specific embodiments, the invention includes a set of interfaces for a direct serial connection. The discussion below and the referenced figures provide specific example embodiments of such interfaces.
Initialize
p-0113<figref idrefs="DRAWINGS">FIG. 1</figref> provides an example of an initial serial interface screen. An example configuration and method of this screen is as follows. Using an appropriate serial cable attached between an SPS according to specific embodiments of the invention and an information screen, such as a terminal or PC, start a Hyper Terminal type session. For example, a connection can be made to COM <b>1</b> with the settings: 19200 bit rate, 8 data bits, parity=none, stop bits=1, and Flow control=none.
p-0114Once connected, log on with a user name and password. Once logged in type 0 for editing outlet states, 1 to view logs or 2 to edit settings.
Edit Settings
p-0115<figref idrefs="DRAWINGS">FIG. 2</figref> provides an example settings menu according to specific embodiments of the invention. In the settings menu a user can set such things as Time/Date, Network Settings, E-mail Settings, and Manage Users. For example, to edit a category a user can use arrow keys or a mouse to select the category or type a corresponding number or letter for the listed function. Note, in a Dual-Com, for example, either the network settings or phone settings may not be present.
Settings Time/Date
p-0116<figref idrefs="DRAWINGS">FIG. 3</figref> provides an example time/date settings menu according to specific embodiments of the invention. This interface can be used by, for example, scrolling to the proper heading and pressing enter to change a value and once the values have been changed press enter to finalize.
Settings Network
p-0117<figref idrefs="DRAWINGS">FIG. 4</figref> provides an example network settings menu according to specific embodiments of the invention. This interface can be used by, for example, scrolling to the proper heading and pressing enter to change a value and once the values have been changed press enter to finalize. This procedure may be repeated for all network settings. Network settings can include such things as values for IP addressing, host and/or domain names, enablement of DHCP (Dynamic Host Configuration Protocol), SNMP, or other functions, etc. In specific embodiments, once all network settings have been made the Tricom must be rebooted in order for the new settings to take affect.
p-0118According to specific embodiments of the invention, seven settings are provided here: Enable DHCP (This is set to on as default so that if there is a DHCP server the SPS will get it's IP address from it. If so it will show up under the Using: section and it will be different than 192.168.1.2 [the default if no DHCP Server is found]); IP; Subnet Mask; DNS; Gateway; Host; and Domain.
Settings Telephone
p-0119<figref idrefs="DRAWINGS">FIG. 5</figref> provides an example telephone settings menu according to specific embodiments of the invention. This interface can be used by, for example, scrolling to the proper heading and pressing enter to change a value. Telephone settings can include such things as values for a phone personal identification number (PIN) and/or enablement of various telephone functions. In embodiments without a telephone interface, this menu may not be available.
Settings Email
p-0120<figref idrefs="DRAWINGS">FIG. 6</figref> provides an example email settings menu according to specific embodiments of the invention. This interface can be used by, for example, scrolling to the proper heading and pressing enter to change a value. Email settings can include such things as values for a email address and/or server and/or email heading values and/or and/or enablement of various email functions. In embodiments without an email interface, this menu may not be available.
Settings Users
p-0121<figref idrefs="DRAWINGS">FIG. 7</figref> provides an example initial user settings menu and <figref idrefs="DRAWINGS">FIG. 8</figref> provides an example user modification settings menu according to specific embodiments of the invention. This interface can be used by, for example, scrolling to the proper heading and pressing enter to change a value. User settings can include such things as user names, passwords, administrator indications, permissions. Permissions can include individual outlet modification permissions.
Example Web Connection Interfaces
p-0122In specific embodiments, the invention includes a set of interfaces for a web-based connection. The discussion below and the referenced figures provide specific example embodiments of such interfaces. Once a network port (such as Ethernet) has been configured with the proper addressing, a user can access a SPS according to specific embodiments of the present invention through such things as a telnet session or through a web browser. According to specific embodiments of the invention, the Telnet session is text based and menu driven and has the same look and feel as the serial connection described above. A web interface is optimized for use in all web browsers, such as Internet Explorer.
p-0123To begin using the web interface, start a web browser and input an SPS's network identification (e.g., an IP and/or domain name address) Once found, an example SPS can prompt for a log on, for example using a popup window requesting a user name and password or alternatively, by retrieving saved passwords.
p-0124<figref idrefs="DRAWINGS">FIG. 9</figref> provides an example of web-based interface screen according to specific embodiments of the invention. This example figure shows a number of different possible functionalities according to specific embodiments of the invention.
p-0125For example, the four underlined links at the top of the interface can have the following functions:
p-0126OUTLETS: change the state of outlets, setup scheduling, rename outlets and view current draw (e.g., amperage) per outlet.
p-0127LOGS: shows previous events (e.g., the last 30) that have occurred.
p-0128USERS: add, edit and delete users to the unit
p-0129SETUP: network, time/date and preference settings. Generally, only users with administrator privileges can access the setup and users tabs.
p-0130According to specific embodiments of the invention, outlet management can be handled as follows. To change the state of any outlet simply click the outlet indication on or off. A round indicator button can provide a color indication of outlet status, e.g., green indicating that the outlet is on and white indicating that the outlet is off. To rename an outlet, click on a label given to the outlet, e.g., “Com Server 2” and in either a popup box or the link enter the new name then click Save Label. Generally, according to specific embodiments of the invention, unless a user is an administrator, the user's selection of outlets is limited to what your administrator has assigned. Common users also have no access to logs, users, and setup.
p-0131According to specific embodiments of the invention, scheduling for individual outlets can be performed as follows. To set a scheduled task select, for example, a clock icon that corresponds to the outlet for which it is desired to set the schedule. <figref idrefs="DRAWINGS">FIG. 10</figref> is a block diagram illustrating an example outlet scheduling interface and method according to specific embodiments of the present invention. Once the outlet is selected, add events by for example changing time, day and then clicking on the Add Event button. Before clicking the Save Schedule Options button, click in the box that indicates scheduling is enabled for this outlet.
p-0132<figref idrefs="DRAWINGS">FIG. 11</figref> is a block diagram illustrating an example outlet label and properties modification interface and method according to specific embodiments of the present invention. This interface can be used to change outlet labels and adjust other outlet properties.
p-0133<figref idrefs="DRAWINGS">FIG. 12</figref> is a block diagram illustrating an example logging interface and method according to specific embodiments of the present invention. According to specific embodiments of the invention, an SPS keeps a running log of events which, if enabled, can be e-mailed to a designated person. For example, in specific embodiments, once the log file is filled the log is then e-mailed and the memory buffer is then cleared and refreshed. If not setup to E-mail, the unit will then overwrite the oldest event, keeping the log current. Logs may generally also be sent or cleared manually be clicking an appropriate heading that can be provided in specific embodiments.
p-0134<figref idrefs="DRAWINGS">FIG. 13</figref> is a block diagram illustrating an example user interface and method according to specific embodiments of the present invention. To access the users tab generally a user has to be an administrator. To add or edit an existing user click edit in the row desired. In the popup box enter a user name, password and select the outlets the new user will be able to access. Once the information is complete click the Save User button and the user may now log in. To completely remove a user, indicate delete. <figref idrefs="DRAWINGS">FIG. 14</figref> is a block diagram illustrating an example user modification interface and method according to specific embodiments of the present invention.
p-0135<figref idrefs="DRAWINGS">FIG. 15</figref> is a block diagram illustrating an example web-based setup interface and method according to specific embodiments of the present invention. This interface provides information about such things as time/date, network settings, logging settings, SNMP settings, can also provide information about telephone settings in an SPS with a telephone interface. Generally, this interface is only accessible to administrators. To make changes using this interface, use the edit button that corresponds to the appropriate heading. For example, to set TIME/DATE, click the corresponding edit button, make the proper changes then click Save.
p-0136<figref idrefs="DRAWINGS">FIG. 16</figref> is a block diagram illustrating an example network identification interface and method according to specific embodiments of the present invention. This interface can, for example, be provided as a popup box from the overall settings interface. In this interface, enter the IP address to assign to the unit. Enter the units Subnet Mask, DNS, host, and domain name. Once all fields are filled in, click the Save and Reboot button. Generally, network settings will not take affect until the unit has been rebooted.
p-0137<figref idrefs="DRAWINGS">FIG. 17</figref> is a block diagram illustrating an example telephone setup interface and method according to specific embodiments of the present invention. To setup the telephone interface, click on the corresponding edit button. By placing a check mark in the “enable interface” box, all calls will be processed by the Tricom. However, if there is no check mark at “Allow callers with no caller ID” the unit will then only answer calls with a caller ID tag and reject all others.
p-0138In SPS units with a telephone interface, enabled as described above, the physical interface according to specific embodiments of the present invention can be connected using a standard analog phone line to the phone jack on the front panel of the SPS. Once connected to an analog phone line and the interface is enabled, the SPS can now be reached and controlled independently from a network or a computer. From an office desk phone to a private cell phone, there is a truly remote means of control. The SPS can be configured to block calls from restricted or unavailable phones. The phone number of the telephone from which a user is calling from must be received by the SPS in order to access the main menu. According to specific embodiments of the present invention, a system can be configured to “Allow callers with no caller ID,” though due to security reasons this is not recommended.
p-0139<figref idrefs="DRAWINGS">FIG. 18</figref> is a block diagram illustrating an example logging setup interface and method according to specific embodiments of the present invention. Under the Logging heading administrators can setup E-mail properties and server settings. To enable the E-mail logs feature click the corresponding edit button. In the popup box, enter the SMTP server name as well as the E-mail address of the person to receive the logs. The “From” and “Subject” boxes are not required to send the log. Once all entries and the “Dump logs to E-mail . . . ” box is checked, click the save button. The unit is now ready to send the log once the buffer is full. According to specific embodiments of the present invention, the SMTP server acts as an outgoing E-mail server. If you don't have this information please consult your network administrator. With out the proper SMTP server, the unit will not be able to E-mail out the logs regardless of all the other settings.
p-0140<figref idrefs="DRAWINGS">FIG. 19</figref> is a block diagram illustrating an example date/time setup interface and method according to specific embodiments of the present invention. To configure the NTP (Network Time Protocol) settings with an NTP Server addressing delete the default settings and ensure that there is a check in the “Enable NTP” checkbox. Once settings are entered a user can indicate “Save” and the page will refresh with the new time/date that the SPS received from the local NTP servers. To manually set “Time/Date” uncheck the “Enable NTP” check box, though it is highly recommended to use an NTP server.
p-0141<figref idrefs="DRAWINGS">FIG. 20</figref> is a block diagram illustrating an example SNMP setup interface and method according to specific embodiments of the present invention. SNMP is by default set to enabled which may cause a security risk. It is therefore suggested to set this to disabled if not used. The MIB (Management Information Block) listing below provides additional information about a specific example SNMP interface according to specific embodiments of the present invention.
p-0142<figref idrefs="DRAWINGS">FIG. 21</figref> is a block diagram illustrating an example options setup interface and method according to specific embodiments of the present invention. This interface can be provided to change behavioral settings such as refresh rates and outlet change confirmations. To avoid accidental on/offs, require confirmation for each on/off event on the web by placing a check in the Require confirmation box. With this feature enabled users will have to click on or off then OK or cancel for each outlet change. The Refresh rate is user definable from 1-999 seconds. Once set the Outlets page will now refresh to the specified time. If the refresh rate is set too fast, the system may not have enough time to load the entire page. Regardless of the refresh rate setting the network speed will determine how fast a page is loaded. A default example setting is at 10 seconds.
h-0025Software Implementations
p-0143Thus, in further embodiments, the present invention may be understood in the context of providing power management over a communication media. An important application for the present invention, and an independent embodiment, is in the field of providing power cycling and monitoring over the Internet, optionally using Internet media protocols and formats, such as HTTP, RTTP (Real-Time Transport Protocol), XML (eXtensible Markup Language), HTML, dHTML (Dynamic Hyper Text Markup Language), VRML (Virtual Reality Markup Language), as well as image, audio, or video formats etc. However, using the teachings provided herein, it will be understood by those of skill in the art that the methods and apparatus of the present invention could be advantageously used in other related situations where users access content over a communication channel, such as modem access systems, institution network systems, wireless systems, etc.
p-0144Various embodiments of the present invention provide methods and/or systems for power management and/or monitoring that can be implemented on a general purpose or special purpose information handling appliance using a suitable programming language such as Java, C++, Cobol, C, Pascal, Fortran, PL1, LISP, assembly, etc., and any suitable data or formatting specifications, such as HTML, XML, dHTML, TIFF, JPEG, tab-delimited text, binary, etc. In the interest of clarity, not all features of an actual implementation are described in this specification. It will be understood that in the development of any such actual implementation (as in any software development project), numerous implementation-specific decisions must be made to achieve the developers' specific goals and subgoals, such as compliance with system-related and/or business-related constraints, which will vary from one implementation to another. Moreover, it will be appreciated that such a development effort might be complex and time-consuming, but would nevertheless be a routine undertaking of software engineering for those of ordinary skill having the benefit of this disclosure.
p-0145As will be further understood from the teachings provided herein, the present invention encompasses a variety of specific embodiments for performing these steps. As further described below, request for power management and monitoring information may be received in a variety of ways, including through one or more graphical user interfaces provided by an SPS to the client system or by the SPS system receiving an email or other digital message or communication from the client system. Thus, according to specific embodiments of the present invention, data and/or indications can be transmitted to the SPS using any method for transmitting digital data, including HTML communications, FTP communications, email communications, wireless communications, etc. In various embodiments, indications of desired data can be received from a human user selecting from a graphical interface at a computing device.
Example External Hardware System Configuration
p-0146<figref idrefs="DRAWINGS">FIG. 22A-B</figref> is a diagram illustrating an example of external features and appearance of an example three connector configurable power supply according to specific embodiments of the present invention. The figures illustrate the following example elements: <ul><li id="ul0003-0001" num="0000"><ul><li id="ul0004-0001" num="0151">1: Unit power indicator</li><li id="ul0004-0002" num="0152">2: Over-all amperage usage meter</li><li id="ul0004-0003" num="0153">3: Outlet indicator</li><li id="ul0004-0004" num="0154">4: Serial port</li><li id="ul0004-0005" num="0155">5: Direct phone line connection (not a modem port)</li><li id="ul0004-0006" num="0156">6: Ethernet port</li><li id="ul0004-0007" num="0157">7: AC outlets</li><li id="ul0004-0008" num="0158">8: Outlets on/standby switch</li><li id="ul0004-0009" num="0159">9: AC inlet receptacle</li></ul></li></ul>
p-0147<figref idrefs="DRAWINGS">FIG. 23A-B</figref> is a diagram illustrating an example of external features and appearance of an example two connector power supply according to specific embodiments of the present invention. In this example embodiment, the phone interface and outlets on/standby switch are not provided on the panels shown.
p-0148According to specific embodiments of the invention, an SPS is designed to be mounted into a standard, 19 inch, network rack or cabinet. If mounted in the horizontal position the SPS takes up 1 rack unit of space. While many other dimensions are possible, in specific embodiments, the invention provides the described functionality in a system having total dimensions less than about a 1RU for 19″ rack, or 17″ wide×8.38″ deep×1.75″ high.
p-0149Including the functionalities described herein in a design having the appearance and dimensions indicated above is considered a further novel and beneficial feature of the invention, various modifications of this basic design are encompassed by the broad descriptions of the invention according to specific embodiments. As just one example, designs can have various desired numbers of controlled outlets, such as 1, 2, 3, 4, 8, 16, 24 and be provided in different dimensions. As a further example, one or more of the controlled power outlets can be controlled together, such as a system providing four pairs of power outlets. As a further example, the outlet shapes shown above can be varied, for example for connecting to different power systems, including various international power systems and different voltages. The design elements illustrated can also be varied.
Example Hardware Functional Components
p-0150<figref idrefs="DRAWINGS">FIG. 24</figref> is a block diagram illustrating an example logic modules of a configurable power supply according to specific embodiments of the present invention. This is one example embodiment showing a number of different elements in one or more novel arrangements not of all which will be a part of all embodiments.
p-0151In this example embodiment, various functions as described above are provided by a microprocessor executing a stored-program, such as, for example, a Rabbit2000 Microcontroller and Memory. According to specific embodiments of the invention, the microcontroller provides the logical execution ability to both control the outlets using a relay driver and relays as shown and also to provide communications ability through two or more interfaces, such as an Ethernet interface comprising an Ethernet connector (jack) and driver, a phone interface comprising a phone connector (jack) and phone DAA (Data Access Arrangement) & DTMF along with an audio processor for generating audio status indications and/or for recognizing speech commands, a serial interface comprising a serial connector (e.g., a RJ45 serial jack and/or a USB connection) and appropriate drivers, and an external LED interface comprising one or more LEDs and an LED driver.
p-0152According to specific embodiments of the invention, current sensors are provided for each outlet and a sensor signal conditioning module and/or function provides information to the microcontroller for use in reporting current status and/or also for use in providing current control. A surge protector, switch/circuit breaker, and digital operating voltage power supply (e.g., 5 volts or 3.3 volts, etc.) are also included.
p-0153Any number of different brands of available modules can be used in specific embodiments of the invention.
h-0028Portions of an Example Circuit Description
p-0154<figref idrefs="DRAWINGS">FIG. 25</figref> through <figref idrefs="DRAWINGS">FIG. 28</figref> provide selected details of an example system according to specific embodiments of the invention. These figures include component listings and circuit descriptions that will be familiar in the art. For clarity of disclosure, these figures do not include every detail of every element of an example system, but do show example embodiments of salient features of an SPS according to specific embodiments of the invention.
p-0155<figref idrefs="DRAWINGS">FIG. 25A-B</figref> is a block diagram illustrating in further details major functional components of an example configurable power supply according to specific embodiments of the present invention. In this embodiment, a microcontroller as shown in the center of the figure is connected to functional components of the invention including an Ethernet module, a Phone & Voice module, a Serial Port module, an LED module, a current Sense module, and a Relays module. The Ethernet module, Phone & Voice module, Serial Port module, and LED module can represent standard configurations of known circuit elements that are not further described herein. The Ethernet module, for example, can consist primarily of an RTL8019AS Ethernet integrated circuit or similar off-the-shelf circuits or custom or integrated components. The Serial Port module, for example, can consist primarily of an SP232E integrated circuit or similar off-the-shelf circuits or custom or integrated components. The Phone & Voice module, for example, can consist primarily of available components such as a CLARE-CPC5620, a SUNPLUS-SPC122ABOARD and/or a NPC-SM8223A integrated circuits or similar off-the-shelf circuits or custom or integrated components. An LED and bar-graph display can be provided using components such as an ALLEGRO 6275 and/or an ALLEGRO 6276 or similar off-the-shelf circuits or custom or integrated components.
p-0156<figref idrefs="DRAWINGS">FIG. 26</figref> is a block diagram illustrating details of a microcontroller and other control logic of an example configurable power supply according to specific embodiments of the present invention. In this embodiment, a RABBIT 2000 microcontroller is shown with an SRAM memory and CMOS FLASH MEMORY.
p-0157<figref idrefs="DRAWINGS">FIG. 27</figref> is a block diagram illustrating details of three power relays of an example configurable power supply according to specific embodiments of the present invention. According to specific embodiments of the invention, the number of power relays will correspond to the number of managed power outlets, such as eight. In alternative embodiments, each relay may provided on-off management of multiple grouped power outlets.
p-0158<figref idrefs="DRAWINGS">FIG. 28A-B</figref> is a block diagram illustrating details of three current sensors of an example configurable power supply according to specific embodiments of the present invention. According to specific embodiments of the invention, the number of sensors will correspond to the number of managed power outlets, such as eight. In alternative embodiments, each sensor relay may provided sensing of multiple grouped power outlets.
Example SNMP MIB
p-0159As is known in the art, SNMP operates using data structures known as MIBs. Provided below is one example MIB that provides further details of a specific embodiment of the invention.
p-0160<tables id="TABLE-US-00002" num="00002"><table frame="none" colsep="0" rowsep="0" pgwide="1"><tgroup align="left" colsep="0" rowsep="0" cols="1"><colspec colname="1" colwidth="266pt" align="left" /><thead><row><entry namest="1" nameend="1" align="center" rowsep="1" /></row></thead><tbody valign="top"><row><entry>CYBERSWITCHING-MIB DEFINITIONS ::= BEGIN</entry></row><row><entry>IMPORTS</entry></row><row><entry> enterprises, IpAddress,</entry></row><row><entry> TimeTicks, Counter, Gauge, Opaque FROM RFC1155-SMI</entry></row><row><entry> OBJECT-TYPE FROM RFC-1212</entry></row><row><entry> TRAP-TYPE FROM RFC-1215</entry></row><row><entry> DisplayString FROM RFC1213-MIB;</entry></row><row><entry>--</entry></row><row><entry>-- Copyright (C) 2003, CyberSwitching. All rights reserved.</entry></row></tbody></tgroup><tgroup align="left" colsep="0" rowsep="0" cols="2"><colspec colname="1" colwidth="77pt" align="left" /><colspec colname="2" colwidth="189pt" align="left" /><tbody valign="top"><row><entry>cyberswitching</entry><entry>OBJECT IDENTIFIER ::= { enterprises 14300 }</entry></row><row><entry>cyberswitching-products</entry><entry>OBJECT IDENTIFIER ::= { cyberswitching 1 }</entry></row></tbody></tgroup><tgroup align="left" colsep="0" rowsep="0" cols="1"><colspec colname="1" colwidth="266pt" align="left" /><tbody valign="top"><row><entry>-- ========== CyberSwitching NMS products ==========</entry></row></tbody></tgroup><tgroup align="left" colsep="0" rowsep="0" cols="2"><colspec colname="1" colwidth="77pt" align="left" /><colspec colname="2" colwidth="189pt" align="left" /><tbody valign="top"><row><entry>tricom-8</entry><entry>OBJECT IDENTIFIER ::= { cyberswitching-products 1 }</entry></row><row><entry>tricom-8-ctrl</entry><entry>OBJECT IDENTIFIER ::= { tricom-8 1 }</entry></row><row><entry>tricom-8-mgmt</entry><entry>OBJECT IDENTIFIER ::= { tricom-8 2 }</entry></row><row><entry>tricom-8-traps</entry><entry>OBJECT IDENTIFIER ::= { tricom-8 3 }</entry></row></tbody></tgroup><tgroup align="left" colsep="0" rowsep="0" cols="1"><colspec colname="1" colwidth="266pt" align="left" /><tbody valign="top"><row><entry>oNumber OBJECT-TYPE</entry></row><row><entry> SYNTAX INTEGER</entry></row><row><entry> ACCESS read-only</entry></row><row><entry> STATUS mandatory</entry></row><row><entry> DESCRIPTION</entry></row><row><entry> “The number of managed outlets present on this system.”</entry></row><row><entry> ::= { tricom-8-ctrl 1 }</entry></row><row><entry>oTable OBJECT-TYPE</entry></row><row><entry> SYNTAX SEQUENCE OF OEntry</entry></row><row><entry> ACCESS not-accessible</entry></row><row><entry> STATUS mandatory</entry></row><row><entry> DESCRIPTION</entry></row><row><entry> “A list of outlet entries. The number of</entry></row><row><entry> entries is given by the value of oNumber.”</entry></row><row><entry> ::= { tricom-8-ctrl 2 }</entry></row><row><entry>oEntry OBJECT-TYPE</entry></row><row><entry> SYNTAX OEntry</entry></row><row><entry> ACCESS not-accessible</entry></row><row><entry> STATUS mandatory</entry></row><row><entry> DESCRIPTION</entry></row><row><entry> “An outlet entry containing STATUS and properties</entry></row><row><entry> of a managed outlet.”</entry></row><row><entry> INDEX { oIndex }</entry></row><row><entry> ::= { oTable 1 }</entry></row><row><entry>OEntry ::=</entry></row><row><entry> SEQUENCE {</entry></row><row><entry> oIndex</entry></row><row><entry> INTEGER,</entry></row><row><entry> oLabel</entry></row><row><entry> DisplayString,</entry></row><row><entry> oState</entry></row><row><entry> INTEGER,</entry></row><row><entry> oCurrentStr</entry></row><row><entry> DisplayString,</entry></row><row><entry> oCurrentFloat</entry></row><row><entry> Opaque,</entry></row><row><entry> oCurrentInt</entry></row><row><entry> INTEGER</entry></row><row><entry> }</entry></row><row><entry>oIndex OBJECT-TYPE</entry></row><row><entry> SYNTAX INTEGER (1..8)</entry></row><row><entry> ACCESS read-only</entry></row><row><entry> STATUS mandatory</entry></row><row><entry> DESCRIPTION</entry></row><row><entry> “A unique value for each outlet. Its value</entry></row><row><entry> ranges between 1 and the value of oNumber.”</entry></row><row><entry> ::= { oEntry 1 }</entry></row><row><entry>oLabel OBJECT-TYPE</entry></row><row><entry> SYNTAX DisplayString (SIZE (0..15))</entry></row><row><entry> ACCESS read-write</entry></row><row><entry> STATUS mandatory</entry></row><row><entry> DESCRIPTION</entry></row><row><entry> “A textual string containing the outlet's</entry></row><row><entry> user-friendly name.”</entry></row><row><entry> ::= { oEntry 2 }</entry></row><row><entry>oState OBJECT-TYPE</entry></row><row><entry> SYNTAX INTEGER {</entry></row></tbody></tgroup><tgroup align="left" colsep="0" rowsep="0" cols="2"><colspec colname="1" colwidth="70pt" align="left" /><colspec colname="2" colwidth="196pt" align="left" /><tbody valign="top"><row><entry> off(1),</entry><entry>-- outlet is on</entry></row><row><entry> on(2),</entry><entry>-- outlet is off</entry></row><row><entry> error(3)</entry><entry>-- outlet has a problem</entry></row><row><entry> }</entry></row></tbody></tgroup><tgroup align="left" colsep="0" rowsep="0" cols="1"><colspec colname="1" colwidth="266pt" align="left" /><tbody valign="top"><row><entry> ACCESS read-write</entry></row><row><entry> STATUS mandatory</entry></row><row><entry> DESCRIPTION</entry></row><row><entry> “The outlet's state. (ON/OFF/ERROR). Reading oState</entry></row><row><entry> returns the outlet's state. Setting oState to off</entry></row><row><entry> turns the outlet off. Setting oState to on turns the</entry></row><row><entry> outlet on. Setting oState to error is invalid.”</entry></row><row><entry> ::= { oEntry 3 }</entry></row><row><entry>oCurrentStr OBJECT-TYPE</entry></row><row><entry> SYNTAX DisplayString</entry></row><row><entry> ACCESS read-only</entry></row><row><entry> STATUS mandatory</entry></row><row><entry> DESCRIPTION</entry></row><row><entry> “The amount of current the outlet is drawing, string</entry></row><row><entry> formatted.”</entry></row><row><entry> ::= { oEntry 4 }</entry></row><row><entry>oCurrentFloat OBJECT-TYPE</entry></row><row><entry> SYNTAX Opaque</entry></row><row><entry> ACCESS read-only</entry></row><row><entry> STATUS mandatory</entry></row><row><entry> DESCRIPTION</entry></row><row><entry> “The amount of current the outlet is drawing, in Amps.”</entry></row><row><entry> ::= { oEntry 5 }</entry></row><row><entry>oCurrentInt OBJECT-TYPE</entry></row><row><entry> SYNTAX INTEGER</entry></row><row><entry> ACCESS read-only</entry></row><row><entry> STATUS mandatory</entry></row><row><entry> DESCRIPTION</entry></row><row><entry> “The amount of current the outlet is drawing, in Amps</entry></row><row><entry> This is rounded to an integer for applications that can't</entry></row><row><entry> handle strings or floats.”</entry></row><row><entry> ::= { oEntry 6 }</entry></row><row><entry>oTotCurrentFloat OBJECT-TYPE</entry></row><row><entry> SYNTAX Opaque</entry></row><row><entry> ACCESS read-only</entry></row><row><entry> STATUS mandatory</entry></row><row><entry> DESCRIPTION</entry></row><row><entry> “The total amount of current the unit is supplying, in Amps.”</entry></row><row><entry> ::= { tricom-8-ctrl 3 }</entry></row><row><entry>oTotCurrentStr OBJECT-TYPE</entry></row><row><entry> SYNTAX DisplayString</entry></row><row><entry> ACCESS read-only</entry></row><row><entry> STATUS mandatory</entry></row><row><entry> DESCRIPTION</entry></row><row><entry> “The total amount of current the unit is supplying.</entry></row><row><entry> (String Formatted)”</entry></row><row><entry> ::= { tricom-8-ctrl 4 }</entry></row><row><entry>oTotCurrentInt OBJECT-TYPE</entry></row><row><entry> SYNTAX INTEGER</entry></row><row><entry> ACCESS read-only</entry></row><row><entry> STATUS mandatory</entry></row><row><entry> DESCRIPTION</entry></row><row><entry> “The total amount of current the unit is supplying, in Amps.</entry></row><row><entry> This is rounded to an integer for applications that can't</entry></row><row><entry> handle strings or floats.”</entry></row><row><entry> ::= { tricom-8-ctrl 5 }</entry></row><row><entry>oStateMask OBJECT-TYPE</entry></row><row><entry> SYNTAX INTEGER</entry></row><row><entry> ACCESS read-only</entry></row><row><entry> STATUS mandatory</entry></row><row><entry> DESCRIPTION</entry></row><row><entry> “Bits 0-8 = the state of all eight outlets. 0 is off</entry></row><row><entry> 1 is on.”</entry></row><row><entry> ::= { tricom-8-ctrl 6 }</entry></row><row><entry>triSysTimeDate OBJECT-TYPE</entry></row><row><entry> SYNTAX TimeTicks</entry></row><row><entry> ACCESS read-write</entry></row><row><entry> STATUS mandatory</entry></row><row><entry> DESCRIPTION</entry></row><row><entry> “Time in hundredths of a second since Jan. 1, 1980.”</entry></row><row><entry> ::= { tricom-8-mgmt 1 }</entry></row><row><entry>triTimeZone OBJECT-TYPE</entry></row><row><entry> SYNTAX INTEGER (−13..13)</entry></row><row><entry> ACCESS read-write</entry></row><row><entry> STATUS mandatory</entry></row><row><entry> DESCRIPTION</entry></row><row><entry> “Time zone as an offset from GMT”</entry></row><row><entry> ::= { tricom-8-mgmt 2 }</entry></row><row><entry>triDaylightSavings OBJECT-TYPE</entry></row><row><entry> SYNTAX INTEGER {</entry></row></tbody></tgroup><tgroup align="left" colsep="0" rowsep="0" cols="2"><colspec colname="1" colwidth="84pt" align="left" /><colspec colname="2" colwidth="182pt" align="left" /><tbody valign="top"><row><entry> disabled(1),</entry><entry>-- Time is in standard time.</entry></row><row><entry> enabled(2)</entry><entry>-- Time is in daylight savings time.</entry></row><row><entry> }</entry></row></tbody></tgroup><tgroup align="left" colsep="0" rowsep="0" cols="1"><colspec colname="1" colwidth="266pt" align="left" /><tbody valign="top"><row><entry> ACCESS read-write</entry></row><row><entry> STATUS mandatory</entry></row><row><entry> DESCRIPTION</entry></row><row><entry> “When enabled, the clock is adjusted for daylight savings.”</entry></row><row><entry> ::= { tricom-8-mgmt 3 }</entry></row><row><entry>triNTPEnabled OBJECT-TYPE</entry></row><row><entry> SYNTAX INTEGER {</entry></row></tbody></tgroup><tgroup align="left" colsep="0" rowsep="0" cols="2"><colspec colname="1" colwidth="84pt" align="left" /><colspec colname="2" colwidth="182pt" align="left" /><tbody valign="top"><row><entry> disabled(1),</entry><entry>-- NTP is disabled. Time must be set manually.</entry></row><row><entry> enabled(2)</entry><entry>-- NTP is enabled. Unit will attempt to get network time.</entry></row><row><entry> }</entry></row></tbody></tgroup><tgroup align="left" colsep="0" rowsep="0" cols="1"><colspec colname="1" colwidth="266pt" align="left" /><tbody valign="top"><row><entry> ACCESS read-write</entry></row><row><entry> STATUS mandatory</entry></row><row><entry> DESCRIPTION</entry></row><row><entry> “When enabled, the unit will attempt to set its clock from the</entry></row><row><entry> network using NTP servers 1 & 2.”</entry></row><row><entry> ::= { tricom-8-mgmt 4 }</entry></row><row><entry>triNTPServerl OBJECT-TYPE</entry></row><row><entry> SYNTAX DisplayString (SIZE (0..59))</entry></row><row><entry> ACCESS read-write</entry></row><row><entry> STATUS mandatory</entry></row><row><entry> DESCRIPTION</entry></row><row><entry> “Time server #1. Set to 255.255.255.255 to broadcast time requests.”</entry></row><row><entry> ::= { tricom-8-mgmt 5 }</entry></row><row><entry>triNTPServer2 OBJECT-TYPE</entry></row><row><entry> SYNTAX DisplayString (SIZE (0..59))</entry></row><row><entry> ACCESS read-write</entry></row><row><entry> STATUS mandatory</entry></row><row><entry> DESCRIPTION</entry></row><row><entry> “Time server #2. Will be used if Timer Server #1 fails.</entry></row><row><entry> Set to 255.255.255.255 to broadcast time requests.”</entry></row><row><entry> ::= { tricom-8-mgmt 6 }</entry></row><row><entry>triDHCPEnabled OBJECT-TYPE</entry></row><row><entry> SYNTAX INTEGER {</entry></row></tbody></tgroup><tgroup align="left" colsep="0" rowsep="0" cols="2"><colspec colname="1" colwidth="84pt" align="left" /><colspec colname="2" colwidth="182pt" align="left" /><tbody valign="top"><row><entry> disabled(1),</entry><entry>-- DHCP is disabled. Network Settings must be set manually.</entry></row><row><entry> enabled(2)</entry><entry>-- DHCP is enabled. Unit will attempt to get settings from</entry></row></tbody></tgroup><tgroup align="left" colsep="0" rowsep="0" cols="1"><colspec colname="1" colwidth="266pt" align="left" /><tbody valign="top"><row><entry>DHCP server.</entry></row><row><entry> }</entry></row><row><entry> ACCESS read-write</entry></row><row><entry> STATUS mandatory</entry></row><row><entry> DESCRIPTION</entry></row><row><entry> “When enabled, the unit will attempt to get its network settings from a DHCP</entry></row><row><entry> server upon booting. If this fails, it will revert to the manual settings.”</entry></row><row><entry> ::= { tricom-8-mgmt 7 }</entry></row><row><entry>triNetworkIP OBJECT-TYPE</entry></row><row><entry> SYNTAX IpAddress</entry></row><row><entry> ACCESS read-write</entry></row><row><entry> STATUS mandatory</entry></row><row><entry> DESCRIPTION</entry></row><row><entry> “IP of this TRICOM-8 Unit.”</entry></row><row><entry> ::= { tricom-8-mgmt 8 }</entry></row><row><entry>triSubnetMask OBJECT-TYPE</entry></row><row><entry> SYNTAX IpAddress</entry></row><row><entry> ACCESS read-write</entry></row><row><entry> STATUS mandatory</entry></row><row><entry> DESCRIPTION</entry></row><row><entry> “Subnet Mask of this TRICOM-8 Unit.”</entry></row><row><entry> ::= { tricom-8-mgmt 9 }</entry></row><row><entry>triGateway OBJECT-TYPE</entry></row><row><entry> SYNTAX IpAddress</entry></row><row><entry> ACCESS read-write</entry></row><row><entry> STATUS mandatory</entry></row><row><entry> DESCRIPTION</entry></row><row><entry> “Gateway of this TRICOM-8 Unit.”</entry></row><row><entry> ::= { tricom-8-mgmt 10 }</entry></row><row><entry>triDNS OBJECT-TYPE</entry></row><row><entry> SYNTAX IpAddress</entry></row><row><entry> ACCESS read-write</entry></row><row><entry> STATUS mandatory</entry></row><row><entry> DESCRIPTION</entry></row><row><entry> “Domain Name Server of this TRICOM-8 Unit.”</entry></row><row><entry> ::= { tricom-8-mgmt 11 }</entry></row><row><entry>triHostName OBJECT-TYPE</entry></row><row><entry> SYNTAX DisplayString (SIZE (0..15))</entry></row><row><entry> ACCESS read-write</entry></row><row><entry> STATUS mandatory</entry></row><row><entry> DESCRIPTION</entry></row><row><entry> “Host Name of this TRICOM-8 Unit.”</entry></row><row><entry> ::= { tricom-8-mgmt 12 }</entry></row><row><entry>triDomain OBJECT-TYPE</entry></row><row><entry> SYNTAX DisplayString (SIZE (0..15))</entry></row><row><entry> ACCESS read-write</entry></row><row><entry> STATUS mandatory</entry></row><row><entry> DESCRIPTION</entry></row><row><entry> “Domain of this TRICOM-8 Unit.”</entry></row><row><entry> ::= { tricom-8-mgmt 13 }</entry></row><row><entry>triPhoneEnabled OBJECT-TYPE</entry></row><row><entry> SYNTAX INTEGER {</entry></row></tbody></tgroup><tgroup align="left" colsep="0" rowsep="0" cols="2"><colspec colname="1" colwidth="84pt" align="left" /><colspec colname="2" colwidth="182pt" align="left" /><tbody valign="top"><row><entry> disabled(1),</entry><entry>-- Phone interface is DISABLED</entry></row><row><entry> enabled(2)</entry><entry>-- Phone interface is ENABLED</entry></row><row><entry> }</entry></row></tbody></tgroup><tgroup align="left" colsep="0" rowsep="0" cols="1"><colspec colname="1" colwidth="266pt" align="left" /><tbody valign="top"><row><entry> ACCESS read-write</entry></row><row><entry> STATUS mandatory</entry></row><row><entry> DESCRIPTION</entry></row><row><entry> “Operational mode of the phone interface.”</entry></row><row><entry> ::= { tricom-8-mgmt 14 }</entry></row><row><entry>triBlockNoCallerID OBJECT-TYPE</entry></row><row><entry> SYNTAX INTEGER {</entry></row></tbody></tgroup><tgroup align="left" colsep="0" rowsep="0" cols="2"><colspec colname="1" colwidth="84pt" align="left" /><colspec colname="2" colwidth="182pt" align="left" /><tbody valign="top"><row><entry> noblock(1),</entry><entry>-- Calls with no CallerID are allowed</entry></row><row><entry> block(2)</entry><entry>-- Calls with no CallerID are blocked</entry></row><row><entry> }</entry></row></tbody></tgroup><tgroup align="left" colsep="0" rowsep="0" cols="1"><colspec colname="1" colwidth="266pt" align="left" /><tbody valign="top"><row><entry> ACCESS read-write</entry></row><row><entry> STATUS mandatory</entry></row><row><entry> DESCRIPTION</entry></row><row><entry> “No CallerID blocking mode.”</entry></row><row><entry> ::= { tricom-8-mgmt 15 }</entry></row><row><entry>triPhonePin OBJECT-TYPE</entry></row><row><entry> SYNTAX DisplayString (SIZE (0..15))</entry></row><row><entry> ACCESS read-write</entry></row><row><entry> STATUS mandatory</entry></row><row><entry> DESCRIPTION</entry></row><row><entry> “PIN used to ACCESS the phone interface. This must be</entry></row><row><entry> at least 6 characters.”</entry></row><row><entry> ::= { tricom-8-mgmt 16 }</entry></row><row><entry>triSyslogServer OBJECT-TYPE</entry></row><row><entry> SYNTAX DisplayString (SIZE (0..59))</entry></row><row><entry> ACCESS read-write</entry></row><row><entry> STATUS mandatory</entry></row><row><entry> DESCRIPTION</entry></row><row><entry> “Server name to send BSD Syslog style log events to. Set this to a</entry></row><row><entry> NULL string to disable Syslog. (events will still be logged locally)”</entry></row><row><entry> ::= { tricom-8-mgmt 17 }</entry></row><row><entry>triLoggingFacility OBJECT-TYPE</entry></row><row><entry> SYNTAX INTEGER {</entry></row><row><entry> local-0(1),</entry></row><row><entry> local-1(2),</entry></row><row><entry> local-2(3),</entry></row><row><entry> local-3(4),</entry></row><row><entry> local-4(5),</entry></row><row><entry> local-5(6),</entry></row><row><entry> local-6(7),</entry></row><row><entry> local-7(8)</entry></row><row><entry> }</entry></row><row><entry> ACCESS read-write</entry></row><row><entry> STATUS mandatory</entry></row><row><entry> DESCRIPTION</entry></row><row><entry> “BSD Syslog Logging Facility.”</entry></row><row><entry> ::= { tricom-8-mgmt 18 }</entry></row><row><entry>triLoggingLevel OBJECT-TYPE</entry></row><row><entry> SYNTAX INTEGER {</entry></row><row><entry> emergency(1),</entry></row><row><entry> alert(2),</entry></row><row><entry> critical(3),</entry></row><row><entry> error(4),</entry></row><row><entry> warning(5),</entry></row><row><entry> notice(6),</entry></row><row><entry> informational(7),</entry></row><row><entry> debug(8)</entry></row><row><entry> }</entry></row><row><entry> ACCESS read-write</entry></row><row><entry> STATUS mandatory</entry></row><row><entry> DESCRIPTION</entry></row><row><entry> “BSD Syslog Logging Level. This affects the amount of logging performed.”</entry></row><row><entry> ::= { tricom-8-mgmt 19 }</entry></row><row><entry>triDumpLogs OBJECT-TYPE</entry></row><row><entry> SYNTAX INTEGER {</entry></row></tbody></tgroup><tgroup align="left" colsep="0" rowsep="0" cols="2"><colspec colname="1" colwidth="84pt" align="left" /><colspec colname="2" colwidth="182pt" align="left" /><tbody valign="top"><row><entry> nodump(1),</entry><entry>-- do not dump logs to email</entry></row><row><entry> dump(2)</entry><entry>-- dump logs to email</entry></row><row><entry> }</entry></row></tbody></tgroup><tgroup align="left" colsep="0" rowsep="0" cols="1"><colspec colname="1" colwidth="266pt" align="left" /><tbody valign="top"><row><entry> ACCESS read-write</entry></row><row><entry> STATUS mandatory</entry></row><row><entry> DESCRIPTION</entry></row><row><entry> “Dump Logs to email when full option.”</entry></row><row><entry> ::= { tricom-8-mgmt 20 }</entry></row><row><entry>triSMTServer OBJECT-TYPE</entry></row><row><entry> SYNTAX DisplayString (SIZE (0..59))</entry></row><row><entry> ACCESS read-write</entry></row><row><entry> STATUS mandatory</entry></row><row><entry> DESCRIPTION</entry></row><row><entry> “Server used to send email.”</entry></row><row><entry> ::= { tricom-8-mgmt 21 }</entry></row><row><entry>triEmailTo OBJECT-TYPE</entry></row><row><entry> SYNTAX DisplayString (SIZE (0..59))</entry></row><row><entry> ACCESS read-write</entry></row><row><entry> STATUS mandatory</entry></row><row><entry> DESCRIPTION</entry></row><row><entry> “Address to send email to.”</entry></row><row><entry> ::= { tricom-8-mgmt 22 }</entry></row><row><entry>triEmailFrom OBJECT-TYPE</entry></row><row><entry> SYNTAX DisplayString (SIZE (0..59))</entry></row><row><entry> ACCESS read-write</entry></row><row><entry> STATUS mandatory</entry></row><row><entry> DESCRIPTION</entry></row><row><entry> “Address to send email from.”</entry></row><row><entry>::= { tricom-8-mgmt 23 }</entry></row><row><entry>triEmailSubject OBJECT-TYPE</entry></row><row><entry> SYNTAX DisplayString (SIZE (0..59))</entry></row><row><entry> ACCESS read-write</entry></row><row><entry> STATUS mandatory</entry></row><row><entry> DESCRIPTION</entry></row><row><entry> “Subject of email.”</entry></row><row><entry> ::= { tricom-8-mgmt 24 }</entry></row><row><entry>triOutletConfirmation OBJECT-TYPE</entry></row><row><entry> SYNTAX INTEGER {</entry></row></tbody></tgroup><tgroup align="left" colsep="0" rowsep="0" cols="2"><colspec colname="1" colwidth="91pt" align="left" /><colspec colname="2" colwidth="175pt" align="left" /><tbody valign="top"><row><entry> noconfirm(1),</entry><entry>-- do not confirm outlet changes</entry></row><row><entry> confirm(2)</entry><entry>-- confirm outlet changes</entry></row><row><entry> }</entry></row></tbody></tgroup><tgroup align="left" colsep="0" rowsep="0" cols="1"><colspec colname="1" colwidth="266pt" align="left" /><tbody valign="top"><row><entry> ACCESS read-write</entry></row><row><entry> STATUS mandatory</entry></row><row><entry> DESCRIPTION</entry></row><row><entry> “Whether or not to confirm outlet changes from web</entry></row><row><entry> interface.”</entry></row><row><entry> ::= { tricom-8-mgmt 32 }</entry></row><row><entry>triwebRefresh OBJECT-TYPE</entry></row><row><entry> SYNTAX INTEGER (5..999)</entry></row><row><entry> ACCESS read-write</entry></row><row><entry> STATUS mandatory</entry></row><row><entry> DESCRIPTION</entry></row><row><entry> “Number of seconds (5-999) to wait before refreshing</entry></row><row><entry> outlets on web interface.”</entry></row><row><entry> ::= { tricom-8-mgmt 33 }</entry></row><row><entry>triOutletStaggerTime OBJECT-TYPE</entry></row><row><entry> SYNTAX INTEGER (0..5000)</entry></row><row><entry> ACCESS read-write</entry></row><row><entry> STATUS mandatory</entry></row><row><entry> DESCRIPTION</entry></row><row><entry> “Number of milliseconds (0-5,000) to pause between outlets when</entry></row><row><entry> turning on/off multiple outlets at once.”</entry></row><row><entry> ::= { tricom-8-mgmt 34 }</entry></row><row><entry>triOSchedules OBJECT-TYPE</entry></row><row><entry> SYNTAX SEQUENCE OF TriScheduleEntry</entry></row><row><entry> ACCESS not-accessible</entry></row><row><entry> STATUS mandatory</entry></row><row><entry> DESCRIPTION</entry></row><row><entry> “A List of Schedules.”</entry></row><row><entry> ::= { tricom-8-mgmt 35 }</entry></row><row><entry>triScheduleEntry OBJECT-TYPE</entry></row><row><entry> SYNTAX TriScheduleEntry</entry></row><row><entry> ACCESS not-accessible</entry></row><row><entry> STATUS mandatory</entry></row><row><entry> DESCRIPTION</entry></row><row><entry> “An outlet schedule entry”</entry></row><row><entry> INDEX { triScheduleIndex }</entry></row><row><entry> ::= { triOSchedules 1 }</entry></row><row><entry>TriScheduleEntry ::=</entry></row><row><entry> SEQUENCE {</entry></row><row><entry> triScheduleIndex</entry></row><row><entry> INTEGER,</entry></row><row><entry> triScheduleEnabled</entry></row><row><entry> INTEGER</entry></row><row><entry> }</entry></row><row><entry>triScheduleIndex OBJECT-TYPE</entry></row><row><entry> SYNTAX INTEGER (1..8)</entry></row><row><entry> ACCESS read-only</entry></row><row><entry> STATUS mandatory</entry></row><row><entry> DESCRIPTION</entry></row><row><entry> “A unique value for each outlet. Its value</entry></row><row><entry> ranges between 1 and oNumber.”</entry></row><row><entry> ::= { triScheduleEntry 1 }</entry></row><row><entry>triScheduleEnabled OBJECT-TYPE</entry></row><row><entry> SYNTAX INTEGER {</entry></row></tbody></tgroup><tgroup align="left" colsep="0" rowsep="0" cols="2"><colspec colname="1" colwidth="84pt" align="left" /><colspec colname="2" colwidth="182pt" align="left" /><tbody valign="top"><row><entry> disabled(1),</entry><entry>-- outlet is disabled</entry></row><row><entry> enabled(2)</entry><entry>-- outlet is enabled</entry></row><row><entry> }</entry></row></tbody></tgroup><tgroup align="left" colsep="0" rowsep="0" cols="1"><colspec colname="1" colwidth="266pt" align="left" /><tbody valign="top"><row><entry> ACCESS read-write</entry></row><row><entry> STATUS mandatory</entry></row><row><entry> DESCRIPTION</entry></row><row><entry> “Enable STATUS of schedule.”</entry></row><row><entry> ::= { triScheduleEntry 2 }</entry></row><row><entry>trilogs OBJECT-TYPE</entry></row><row><entry> SYNTAX SEQUENCE OF TriLogEntry</entry></row><row><entry> ACCESS not-accessible</entry></row><row><entry> STATUS mandatory</entry></row><row><entry> DESCRIPTION</entry></row><row><entry> “A List of Log Entries.”</entry></row><row><entry> ::= { tricom-8-mgmt 38 }</entry></row><row><entry>triLogEntry OBJECT-TYPE</entry></row><row><entry> SYNTAX TriLogEntry</entry></row><row><entry> ACCESS not-accessible</entry></row><row><entry> STATUS mandatory</entry></row><row><entry> DESCRIPTION</entry></row><row><entry> “A Log Entry Display String.”</entry></row><row><entry> INDEX { triLogIndex }</entry></row><row><entry> ::= { trilogs 1 }</entry></row><row><entry>TriLogEntry ::=</entry></row><row><entry> SEQUENCE {</entry></row><row><entry> triLogIndex</entry></row><row><entry> INTEGER,</entry></row><row><entry> triLogString</entry></row><row><entry> DisplayString</entry></row><row><entry> }</entry></row><row><entry>triLogIndex OBJECT-TYPE</entry></row><row><entry> SYNTAX INTEGER (1..32)</entry></row><row><entry> ACCESS read-only</entry></row><row><entry> STATUS mandatory</entry></row><row><entry> DESCRIPTION</entry></row><row><entry> “A unique value for each log entry. Its value</entry></row><row><entry> ranges between 1 and trinumlogs.”</entry></row><row><entry> ::= { triLogEntry 1 }</entry></row><row><entry>triLogString OBJECT-TYPE</entry></row><row><entry> SYNTAX DisplayString</entry></row><row><entry> ACCESS read-only</entry></row><row><entry> STATUS mandatory</entry></row><row><entry> DESCRIPTION</entry></row><row><entry> “The log entry in string form.”</entry></row><row><entry> ::= { triLogEntry 2 }</entry></row><row><entry>triNumLogs OBJECT-TYPE</entry></row><row><entry> SYNTAX INTEGER</entry></row><row><entry> ACCESS read-only</entry></row><row><entry> STATUS mandatory</entry></row><row><entry> DESCRIPTION</entry></row><row><entry> “The number of Log entries available”</entry></row><row><entry> ::= { tricom-8-mgmt 39 }</entry></row><row><entry>-- TRAPS</entry></row><row><entry>triOutletCurrentTraps OBJECT-TYPE</entry></row><row><entry> SYNTAX SEQUENCE OF TriCurrentTrapEntry</entry></row><row><entry> ACCESS not-accessible</entry></row><row><entry> STATUS mandatory</entry></row><row><entry> DESCRIPTION</entry></row><row><entry> “Table of current trap limits.”</entry></row><row><entry> ::= { tricom-8-traps 1 }</entry></row><row><entry>triCurrentTrapEntry OBJECT-TYPE</entry></row><row><entry> SYNTAX TriCurrentTrapEntry</entry></row><row><entry> ACCESS not-accessible</entry></row><row><entry> STATUS mandatory</entry></row><row><entry> DESCRIPTION</entry></row><row><entry> “An outlet entry containing STATUS and properties</entry></row><row><entry> of a managed outlet.”</entry></row><row><entry> INDEX { triCurIndex }</entry></row><row><entry> ::= { triOutletCurrentTraps 1 }</entry></row><row><entry>TriCurrentTrapEntry ::=</entry></row><row><entry> SEQUENCE {</entry></row><row><entry> triCurIndex</entry></row><row><entry> INTEGER,</entry></row><row><entry> triCurLoEnabled</entry></row><row><entry> INTEGER,</entry></row><row><entry> triCurLoBound</entry></row><row><entry> DisplayString,</entry></row><row><entry> triCurLoGracePeriod</entry></row><row><entry> INTEGER (0..65535),</entry></row><row><entry> triCurHiEnabled</entry></row><row><entry> INTEGER,</entry></row><row><entry> triCurHiBound</entry></row><row><entry> DisplayString,</entry></row><row><entry> triCurHiGracePeriod</entry></row><row><entry> INTEGER (0..65535)</entry></row><row><entry> }</entry></row><row><entry>triCurIndex OBJECT-TYPE</entry></row><row><entry> SYNTAX INTEGER (1..8)</entry></row><row><entry> ACCESS read-only</entry></row><row><entry> STATUS mandatory</entry></row><row><entry> DESCRIPTION</entry></row><row><entry> “A unique value for each outlet. Its value</entry></row><row><entry> ranges between 1 and the value of oNumber.”</entry></row><row><entry> ::= { triCurrentTrapEntry 1 }</entry></row><row><entry>triCurLoEnabled OBJECT-TYPE</entry></row><row><entry> SYNTAX INTEGER {</entry></row></tbody></tgroup><tgroup align="left" colsep="0" rowsep="0" cols="2"><colspec colname="1" colwidth="84pt" align="left" /><colspec colname="2" colwidth="182pt" align="left" /><tbody valign="top"><row><entry> disabled(1),</entry><entry>-- trap is disabled</entry></row><row><entry> enabled(2)</entry><entry>-- trap is enabled</entry></row><row><entry> }</entry></row></tbody></tgroup><tgroup align="left" colsep="0" rowsep="0" cols="1"><colspec colname="1" colwidth="266pt" align="left" /><tbody valign="top"><row><entry> ACCESS read-write</entry></row><row><entry> STATUS mandatory</entry></row><row><entry> DESCRIPTION</entry></row><row><entry> “Low current bound trap enable. When enabled, a trap will</entry></row><row><entry> be generated when current falls below triCurLoBound and</entry></row><row><entry> stays below for longer than triCurLoGracePeriod.”</entry></row><row><entry> ::= { triCurrentTrapEntry 2 }</entry></row><row><entry>triCurLoBound OBJECT-TYPE</entry></row><row><entry> SYNTAX DisplayString (SIZE(0..20))</entry></row><row><entry> ACCESS read-write</entry></row><row><entry> STATUS mandatory</entry></row><row><entry> DESCRIPTION</entry></row><row><entry> “Low current boundary. This string must contain only a valid</entry></row><row><entry> floating-point number representing current in Amps between</entry></row><row><entry> 0.0 and 99.9. When the outlet current falls below this value,</entry></row><row><entry> and stays below for longer than triCurLoGracePeriod a trap</entry></row><row><entry> will be generated.”</entry></row><row><entry> ::= { triCurrentTrapEntry 3 }</entry></row><row><entry>triCurLoGracePeriod OBJECT-TYPE</entry></row><row><entry> SYNTAX INTEGER (0..65535)</entry></row><row><entry> ACCESS read-write</entry></row><row><entry> STATUS mandatory</entry></row><row><entry> DESCRIPTION</entry></row><row><entry> “Low current grace period in Seconds. When the outlet</entry></row><row><entry> current falls below triCurLoBound, and stays below for longer</entry></row><row><entry> than this value, a trap will be generated. Care should be</entry></row><row><entry> taken not to set this too low, or the network might be</entry></row><row><entry> flooded with traps if the current rapidly fluctuates around</entry></row><row><entry> triCurLoBound.”</entry></row><row><entry> ::= { triCurrentTrapEntry 4 }</entry></row><row><entry>triCurHiEnabled OBJECT-TYPE</entry></row><row><entry> SYNTAX INTEGER }</entry></row></tbody></tgroup><tgroup align="left" colsep="0" rowsep="0" cols="2"><colspec colname="1" colwidth="84pt" align="left" /><colspec colname="2" colwidth="182pt" align="left" /><tbody valign="top"><row><entry> disabled(1),</entry><entry>-- trap is disabled</entry></row><row><entry> enabled(2)</entry><entry>-- trap is enabled</entry></row><row><entry> }</entry></row></tbody></tgroup><tgroup align="left" colsep="0" rowsep="0" cols="1"><colspec colname="1" colwidth="266pt" align="left" /><tbody valign="top"><row><entry> ACCESS read-write</entry></row><row><entry> STATUS mandatory</entry></row><row><entry> DESCRIPTION</entry></row><row><entry> “High current bound trap enable. When enabled, a trap will</entry></row><row><entry> be generated when current rises above triCurHiBound and</entry></row><row><entry> stays above for longer than triCurHiGracePeriod.”</entry></row><row><entry> ::= { triCurrentTrapEntry 5 }</entry></row><row><entry>triCurHiBound OBJECT-TYPE</entry></row><row><entry> SYNTAX DisplayString (SIZE(0..20))</entry></row><row><entry> ACCESS read-write</entry></row><row><entry> STATUS mandatory</entry></row><row><entry> DESCRIPTION</entry></row><row><entry> “High current boundary. This string must contain only a valid</entry></row><row><entry> floating-point number representing current in Amps between</entry></row><row><entry> 0.0 and 99.9 When the outlet current rises above this value,</entry></row><row><entry> and stays above for longer than triCurHiGracePeriod a trap</entry></row><row><entry> will be generated.”</entry></row><row><entry> ::= { triCurrentTrapEntry 6 }</entry></row><row><entry>triCurHiGracePeriod OBJECT-TYPE</entry></row><row><entry> SYNTAX INTEGER (0..65535)</entry></row><row><entry> ACCESS read-write</entry></row><row><entry> STATUS mandatory</entry></row><row><entry> DESCRIPTION</entry></row><row><entry> “High current grace period in Milliseconds. When the outlet</entry></row><row><entry> Current rises above triCurHiBound, and stays above for longer</entry></row><row><entry> than this value, a trap will be generated. Care should be</entry></row><row><entry> taken not to set this too low, or the network might be</entry></row><row><entry> flooded with traps if the current rapidly fluctuates around</entry></row><row><entry> triCurHiBound.”</entry></row><row><entry> ::= { triCurrentTrapEntry 7 }</entry></row><row><entry>triOutletTrapped OBJECT-TYPE</entry></row><row><entry> SYNTAX INTEGER</entry></row><row><entry> ACCESS read-only</entry></row><row><entry> STATUS mandatory</entry></row><row><entry> DESCRIPTION</entry></row><row><entry> “The outlet that caused a trap (1-oNumber). This trap variable</entry></row><row><entry> is supplied for convenience. It should allow a management tool</entry></row><row><entry> to respond to outlet-specific traps with less parsing.”</entry></row><row><entry> ::= { tricom-8-traps 2 }</entry></row><row><entry>tricomTotalCurrentCritical TRAP-TYPE</entry></row><row><entry> ENTERPRISE cyberswitching</entry></row><row><entry> VARIABLES { oTotCurrentStr, oTotCurrentFloat }</entry></row><row><entry> DESCRIPTION</entry></row><row><entry> “Total current has gone above unit's circuit protection.”</entry></row><row><entry> ::= 1</entry></row><row><entry>tricomTotalCurrentWarning TRAP-TYPE</entry></row><row><entry> ENTERPRISE cyberswitching</entry></row><row><entry> VARIABLES { oTotCurrentStr, oTotCurrentFloat }</entry></row><row><entry> DESCRIPTION</entry></row><row><entry> “Total current has gone above rated unit capacity.”</entry></row><row><entry> ::= 2</entry></row><row><entry>tricomOutletLowCurrentWarning TRAP-TYPE</entry></row><row><entry> ENTERPRISE cyberswitching</entry></row><row><entry> VARIABLES { triOutletTrapped, oCurrentStr, oCurrentFloat }</entry></row><row><entry> DESCRIPTION</entry></row><row><entry> “Current has gone below triCurLoBound and</entry></row><row><entry> stayed there for longer than triCurLoGracePeriod.”</entry></row><row><entry> ::= 3</entry></row><row><entry>tricomOutletHighCurrentWarning TRAP-TYPE</entry></row><row><entry> ENTERPRISE cyberswitching</entry></row><row><entry> VARIABLES { triOutletTrapped, oCurrentStr, oCurrentFloat }</entry></row><row><entry> DESCRIPTION</entry></row><row><entry> “Current has gone above triCurHiBound and</entry></row><row><entry> stayed there for longer than triCurHiGracePeriod.”</entry></row><row><entry> ::= 4</entry></row><row><entry>END</entry></row><row><entry namest="1" nameend="1" align="center" rowsep="1" /></row></tbody></tgroup></table></tables>
Embodiment in a Programmed Information Appliance
p-0161<figref idrefs="DRAWINGS">FIG. 29</figref> is a block diagram showing a representative example logic device in which various aspects of the present invention may be embodied. As will be understood to practitioners in the art from the teachings provided herein, the invention can be implemented in hardware and/or software. In some embodiments of the invention, different aspects of the invention can be implemented in either client-side logic or server-side logic. As will be understood in the art, the invention or components thereof may be embodied in a fixed media program component containing logic instructions and/or data that when loaded into an appropriately configured computing device cause that device to perform according to the invention. As will be understood in the art, a fixed media containing logic instructions may be delivered to a viewer on a fixed media for physically loading into a viewer's computer or a fixed media containing logic instructions may reside on a remote server that a viewer accesses through a communication medium in order to download a program component.
p-0162<figref idrefs="DRAWINGS">FIG. 29</figref> shows an information appliance (or digital device) <b>700</b> that may be understood as a logical apparatus that can read instructions from media <b>717</b> and/or network port <b>719</b>, which can optionally be connected to server <b>720</b> having fixed media <b>722</b>. Apparatus <b>700</b> can thereafter use those instructions to direct server or client logic, as understood in the art, to embody aspects of the invention. One type of logical apparatus that may embody the invention is a computer system as illustrated in <b>700</b>, containing CPU <b>707</b>, optional input devices <b>709</b> and <b>711</b>, disk drives <b>715</b> and optional monitor <b>705</b>. Fixed media <b>717</b>, or fixed media <b>722</b> over port <b>719</b>, may be used to program such a system and may represent a disk-type optical or magnetic media, magnetic tape, solid state dynamic or static memory, etc. In specific embodiments, the invention may be embodied in whole or in part as software recorded on this fixed media. Communication port <b>719</b> may also be used to initially receive instructions that are used to program such a system and may represent any type of communication connection.
p-0163The invention also may be embodied in whole or in part within the circuitry of an application specific integrated circuit (ASIC) or a programmable logic device (PLD). In such a case, the invention may be embodied in a computer understandable descriptor language, which may be used to create an ASIC, or PLD that operates as herein described.
Other Embodiments
p-0164The invention has now been described with reference to specific embodiments. Other embodiments will be apparent to those of skill in the art. In particular, a viewer digital information appliance has generally been illustrated as a personal computer. However, the digital computing device is meant to be any information appliance for interacting with a remote data application, and could include such devices as a digitally enabled television, cell phone, personal digital assistant, laboratory or manufacturing equipment, etc. It is understood that the examples and embodiments described herein are for illustrative purposes and that various modifications or changes in light thereof will be suggested by the teachings herein to persons skilled in the art and are to be included within the spirit and purview of this application and scope of the claims.
p-0165Furthermore, various different actions can be used to effect power management. For example, a voice command may be spoken by the purchaser, a key may be depressed by the purchaser, a button on a client-side scientific device may be depressed by the user, or selection using any pointing device may be effected by the user.
p-0166All publications, patents, and patent applications cited herein or filed with this application, including any references filed as part of an Information Disclosure Statement, are incorporated by reference in their entirety.
p-0167Referring now to <figref idrefs="DRAWINGS">FIG. 31</figref>, a block schematic diagram of a power distribution apparatus according to an embodiment is set forth and given the general reference character <b>200</b>. Apparatus <b>200</b> may include similar constituents as apparatus <b>100</b> of <figref idrefs="DRAWINGS">FIG. 30</figref> and such constituents may be referred to by the same reference character.
p-0168Apparatus <b>200</b> may include a wall outlet <b>210</b>, a power cord <b>220</b>, a power distribution unit <b>230</b>, load devices (LD<b>1</b> to LD<b>8</b>), a network <b>240</b>, and a computer <b>250</b>.
p-0169Power cord <b>220</b> may provide an electrical connection between wall outlet <b>210</b> and an input terminal <b>232</b> of power distribution unit <b>230</b>. Power distribution unit <b>230</b> may include a port <b>234</b> connected to network <b>240</b>. Computer <b>250</b> may optionally be connected to network <b>240</b>. Each load device (LD<b>1</b> to LD<b>8</b>) may be connected to a respective power distribution outlet (PDO-<b>1</b> to PDO-<b>8</b>) through a respective power cord (PC-<b>1</b> to PC-<b>8</b>).
p-0170Power distribution unit <b>230</b> may include a processing unit <b>236</b> and a memory <b>238</b>. Each power distribution outlet (PDO-<b>1</b> to PDO-<b>8</b>) may have a respective circuit breaker unit (CB<b>1</b> to CB<b>8</b>) associated therewith. Processing unit <b>236</b> may be connected to each circuit breaker unit (CB<b>1</b> to CB<b>8</b>) by way of a bus BUS.
p-0171The operation of the power distribution apparatus <b>200</b> will now be discussed.
p-0172Each circuit breaker unit (CB<b>1</b> to CB<b>8</b>) may be independently set to trip at an independent current value. A user may set the independent current value for each circuit breaker unit (CB<b>1</b> to CB<b>8</b>) at computer <b>250</b>. These values may be transferred through network <b>240</b> to port <b>234</b> of PDU <b>230</b>. Processing unit <b>236</b> may operate under the control of software stored in memory <b>238</b> to sample current flowing through each circuit breaker unit (CB<b>1</b> to CB<b>8</b>) by sending instructions and receiving current data values along bus BUS. In this way, the current flowing between each power distribution outlet (PDO-<b>1</b> to PDO-<b>8</b>) and each respective load device (LD<b>1</b> to LD<b>8</b>) may be monitored.
p-0173Processing unit <b>236</b> may sample the current data values and capture a digital version of a current waveform of the current flowing through each circuit breaker unit (CB<b>1</b> to CB<b>8</b>). Processing unit <b>236</b> may then perform parametric calculations on each waveform to provide the current values to be used in a comparison step. In the comparison step, processing unit <b>236</b> may determine if the current value is greater than the previously programmed independent current value. If any of the comparisons show the sampled current value is greater, then a trip command may be sent to the circuit breaker unit (CB<b>1</b> to CB<b>8</b>) having the overcurrent condition. The trip command may instruct the circuit breaker unit (CB<b>1</b> to CB<b>8</b>) to trip. In this way, each power distribution outlet (PDO-<b>1</b> to PDO-<b>8</b>) may have an independently programmed current value (e.g., circuit breaker current rating). These independently programmed current values may be changed by a user through a software interface at computer <b>250</b> at essentially any time.
p-0174The above-mentioned parametric calculation performed by processing unit <b>236</b> on each current waveform may include peak current, root-mean-square (RMS) current, and crest factor harmonic current, as just a few examples.
p-0175In the above-mentioned operation, an overcurrent protection value may be independently programmed for each power distribution outlet. In this case, the independently programmed current values may be set to protect load devices (LD<b>1</b> to LD<b>8</b>) from current spikes, which may cause hardware damage. However, it may also be desirable to provide protection against current magnitudes that may only cause damage or adverse effects if a current magnitude is sustained for a predetermined time period. Such a feature of the embodiment of <figref idrefs="DRAWINGS">FIG. 2</figref> will now be described in detail.
p-0176Each circuit breaker unit (CB<b>1</b> to CB<b>8</b>) may be independently set to trip at an independent sustained current value over an independent time period. A user may set the independent sustained current value and independent time period for each circuit breaker unit (CB<b>1</b> to CB<b>8</b>) at computer <b>250</b>. These values may be transferred through network <b>240</b> to port <b>234</b> of PDU <b>230</b>. Processing unit <b>236</b> may operate under the control of software stored in memory <b>238</b> to sample current flowing through each circuit breaker unit (CB<b>1</b> to CB<b>8</b>) by sending instructions and receiving current data values along bus BUS. In this way, the current flowing between each power distribution outlet (PDO-<b>1</b> to PDO-<b>8</b>) and each respective load device (LD<b>1</b> to LD<b>8</b>) may be monitored.
p-0177Processing unit <b>236</b> may sample the current data values and capture a digital version of a current waveform of the current flowing through each circuit breaker unit (CB<b>1</b> to CB<b>8</b>). Processing unit <b>236</b> may then perform parametric calculations on each waveform to provide the current values to be used in a comparison step. In the comparison step, processing unit <b>236</b> may determine if the current value is greater than the previously programmed independent sustained current value. If any of the comparisons show the sampled current value is greater, then processing unit <b>236</b> may re-sample the current data value of the circuit breaker unit (CB<b>1</b> to CB<b>8</b>) having the initial overcurrent condition after the independent time period for that circuit breaker unit (CB<b>1</b> to CB<b>8</b>) has elapsed.
p-0178Then, processing unit <b>236</b> may capture a second digital version of a current waveform of the current flowing through the circuit breaker unit (CB<b>1</b> to CB<b>8</b>) having the initial overcurrent condition. Processing unit <b>236</b> can perform a second parametric calculation on a second captured waveform to provide a current value to be used in a second comparison step. In the second comparison step, processing unit <b>236</b> may determine if the current value is greater than the previously programmed independent sustained current value. If the comparison shows the sampled current value is still greater, then a trip command may be sent to the circuit breaker unit (CB<b>1</b> to CB<b>8</b>) having the sustained overcurrent condition. The trip command may instruct the circuit breaker unit (CB<b>1</b> to CB<b>8</b>) to trip.
p-0179In this way, each power distribution outlet (PDO-<b>1</b> to PDO-<b>8</b>) may have an independently programmed protection against current magnitudes that may only cause damage or adverse affects if a current magnitude is sustained for a predetermined time period. The sustained current magnitudes and predetermined time periods may be independently programmed for each power distribution outlet (PDO-<b>1</b> to PDO-<b>8</b>). Alternately, a time period that is the same for all the power distribution outlets (PDO-<b>1</b> to PDO-<b>8</b>) or a subset of power distribution outlets (PDO-<b>1</b> to PDO-<b>8</b>) may be set or used as an initial default. These independently programmed current values and time periods may be changed by a user through a software interface at computer <b>250</b> at any time.
p-0180The above-mentioned parametric calculation performed by processing unit <b>236</b> on each current waveform may include peak current, root-mean-square (RMS) current, and crest factor harmonic current, as just a few examples.
p-0181In the above-mentioned operation, the current values for each power distribution outlet (PDO-<b>1</b> to PDO-<b>8</b>) are sampled. If an initial comparison shows that there is a potential sustained overcurrent condition, another sample is taken after a predetermined time period has elapsed. However, it may be desirable to continuously sample the current value after the initial sample has indicated the potential sustained overcurrent condition. In this case, the command for the circuit breaker unit (CB<b>1</b> to CB<b>8</b>) to trip may only be executed if all of the plurality of samples during the predetermined time period indicate the continuous overcurrent condition in the comparison step. In this way, dips below the continuous overcurrent condition may reset the algorithm back to the initial sample and comparison steps.
p-0182In yet another feature of the embodiment of <figref idrefs="DRAWINGS">FIG. 2</figref>, a user may independently set a time percentage of overcurrent condition in a predetermined time period. In this way, sampling and comparison steps may be performed as in the above-mentioned continuous overcurrent condition check. However, the trip command to the circuit breaker unit (CB<b>1</b> to CB<b>8</b>) may only be executed if the overcurrent condition has occurred over a predetermined percentage of a predetermined time period.
p-0183Referring now to <figref idrefs="DRAWINGS">FIG. 32</figref>, a circuit schematic diagram of selected portions of power distribution unit <b>230</b> according to an embodiment are set forth.
p-0184<figref idrefs="DRAWINGS">FIG. 32</figref> illustrates a circuit breaker unit (CB<b>1</b> to CB<b>8</b>) in detail. Only the details of circuit breaker unit CB<b>1</b> are illustrated in order to avoid unduly cluttering up the figure. However, circuit breaker units (CB<b>2</b> to CB<b>8</b>) may include essentially the same constituents.
p-0185Circuit breaker unit CB<b>1</b> may include a switching circuit <b>320</b>, a current sampling circuit <b>330</b>, and interface electronics <b>310</b>. Circuit breaker unit CB<b>1</b> may receive an input voltage from input terminal <b>232</b> and may provide an output voltage at power distribution outlet PDO-<b>1</b>. In this case, a 120 VAC may be received including a ground GND, neutral NEUTRAL and hot HOT.
p-0186Ground GND may be connected to a base of power distribution unit <b>230</b>, as one example. Neutral NEUTRAL may pass directly through to power distribution outlet PDO-<b>1</b>. Switching circuit <b>320</b> and current sampling circuit <b>330</b> may be provided in series between the input terminal <b>232</b> and power distribution outlet PDO-<b>1</b> in the hot HOT signal path.
p-0187Interface electronics <b>310</b> may provide control for switching circuit <b>320</b> and may sample current values provided by current sampling circuit <b>330</b>. Interface electronics <b>310</b> may receive current values provided by current sampling circuit <b>330</b> in an analog form and may include an analog to digital converter <b>312</b> to provide digital current values. According to control signals from interface electronics <b>310</b> a switching circuit <b>320</b> may be opened to interrupt current flowing between power distribution outlet PDO-<b>1</b> and load device LD<b>1</b> connected thereto (illustrated in <figref idrefs="DRAWINGS">FIG. 31</figref>). In a similar fashion, interface electronics <b>310</b> may provide control for closing switching circuit <b>320</b> to allow current to flow between power distribution outlet PDO-<b>1</b> and load device LD<b>1</b> connected thereto (illustrated in <figref idrefs="DRAWINGS">FIG. 2</figref>).
p-0188Switching circuit <b>330</b> may include a mechanical relay or a solid-state relay, such as a thyristor, as just two examples. Current sampling circuit <b>330</b> may include an isolation step down transformer, a Hall effect device, a sense resistor or a magnetometer, as just a few examples.
p-0189Processing unit <b>236</b> may provide commands to interface electronics <b>310</b> based on an algorithm and programmed values (set as indicated above in the operation of the embodiment of <figref idrefs="DRAWINGS">FIG. 2</figref>), which may be stored in memory <b>238</b>.
p-0190It is noted that each circuit breaker unit (CB<b>1</b> to CB<b>8</b>) may commonly receive an input voltage from input terminal <b>232</b> and may provide an output voltage at a respective power distribution outlet (PDO-<b>1</b> to PDO-<b>8</b>).
p-0191Memory <b>238</b> may be included on processing unit <b>236</b> or may be a separate integrated circuit, as just one example.
p-0192It is also noted that a PDU <b>230</b> may also provide additional current readings beyond those of individual power distribution outlets (PDO-<b>1</b> to PDO-<b>8</b>). In particular, a PDU <b>230</b> may logically divide power distribution outlets (PDO-<b>1</b> to PDO-<b>8</b>) into two or more banks. A current value for each such bank can be generated and monitored in the same general fashion as a power distribution outlet, as described above. As but one very particular example, a bank current value may be generated by summing current values of the respective power distribution outlets of the bank, or by an in-line monitoring structure (e.g., step-down transformer) assuming separate power line wiring for each bank.
p-0193In addition, in alternate embodiments, circuit breaker trip actions can be provided on a bank-by-bank basis. As but one example, individual circuit breakers for all power distribution outlets of a bank can be tripped essentially simultaneously in the event of a bank overcurrent condition. Alternatively, assuming separate power line wiring for each bank, a bank circuit breaker can be employed. Of course, limits for bank current values may also be programmable.
p-0194Along these same lines, a PDU <b>230</b> can provide an overall unit current reading for the PDU <b>230</b>. As but one very particular example, a unit current value may be generated by summing currents to all of the power distribution outlets of the PDU <b>230</b>, or by an in-line monitoring structure. Current limits for a PDU <b>230</b> can be programmable.
p-0195It follows that in alternate embodiments, circuit breaker trip actions can be provided for the PDU <b>230</b>. As but one example, individual circuit breakers for all power distribution outlets of PDU <b>230</b> can be tripped essentially simultaneously in the event of a unit overcurrent condition. Alternatively, a unit circuit breaker can be employed.
p-0196In this way, warnings and/or circuit breaker trip actions can occur not only on an outlet-by-outlet basis, but also on a bank-by-bank and/or overall unit basis.
p-0197Referring now to <figref idrefs="DRAWINGS">FIG. 33</figref>, a user interface for inputting programmable values for the power distribution unit <b>230</b>, such as that shown in <figref idrefs="DRAWINGS">FIG. 32</figref> is set forth and given the general reference character <b>400</b>. User interface <b>400</b> may be a user interface on computer <b>250</b> of <figref idrefs="DRAWINGS">FIG. 31</figref>, for example.
p-0198Referring now to <figref idrefs="DRAWINGS">FIG. 33</figref> in conjunction with <figref idrefs="DRAWINGS">FIG. 31</figref>, user interface <b>400</b> may include input boxes (<b>410</b> to <b>480</b>). Input box <b>410</b> may be used to select one of the power distribution outlets (PDO-<b>1</b> to PDO-<b>8</b>). Once the power distribution outlet (PDO-<b>1</b> to PDO-<b>8</b>) is selected, input boxes (<b>420</b> to <b>480</b>) may be input with values or selected with, for example a mouse click, to enable or disable features for the selected power distribution outlet (PDO-<b>1</b> to PDO-<b>8</b>) identified in input box <b>410</b>.
p-0199Input box <b>420</b> may be used to enable low current alerts. A low current alert may be used to notify a user when a current for a predetermined power distribution outlet (PDO-<b>1</b> to PDO-<b>8</b>) has remained below a low current value for longer than a low grace period. Input box <b>430</b> may be used to provide the low current value and input box <b>440</b> may be used to provide the low grace period. In this case, processing unit <b>236</b> may monitor current flowing through the selected circuit breaker unit (CB<b>1</b> to CB<b>8</b>) by sending instructions and receiving current data values along bus BUS. In this way, the current flowing between the selected power distribution outlet (PDO-<b>1</b> to PDO-<b>8</b>) and a respective load device (LD<b>1</b> to LD<b>8</b>) may be monitored. If the current flowing through the selected circuit breaker unit (CB<b>1</b> to CB<b>8</b>) remains below the low current value as indicated by input box <b>430</b> for longer than a low grace period as indicated by input box <b>440</b>, a user may be notified. A user may be notified by a pop-up window alert on computer <b>250</b>, as just one example.
p-0200Input box <b>450</b> may be used to enable high current alerts and input box <b>460</b> may be used to enable the circuit breaker functions as described above with respect to <figref idrefs="DRAWINGS">FIGS. 31 and 32</figref>. A high current alert may be used to notify a user when a current for a predetermined power distribution outlet (PDO-<b>1</b> to PDO-<b>8</b>) has remained above a high current value for longer than a high grace period. Input box <b>470</b> may be used to provide the high current value and input box <b>480</b> may be used to provide the high grace period. The high current value provided in input box <b>470</b> may correspond to a sustained current value as described above in the embodiment of <figref idrefs="DRAWINGS">FIG. 31</figref>. The high grace period provided in input box <b>480</b> may correspond to the time period for the sustained current value as described above in the embodiment of <figref idrefs="DRAWINGS">FIG. 31</figref>.
p-0201Other input boxes may be provided in the user interface <b>400</b>. For example, an overcurrent protection value may be provided in an input box. In this way, each power distribution outlet (PDO-<b>1</b> to PDO-<b>8</b>) may be protected against currents that may be instantaneously destructive to a load device (LD<b>1</b> to LD<b>8</b>) as described above with respect to the embodiment of <figref idrefs="DRAWINGS">FIG. 31</figref>. In this case, an overcurrent protection value may be provided which may be just below a destructive value in order to provide adequate protection margin for the load device (LD<b>1</b> to LD<b>8</b>).
p-0202Yet other input boxes may be provided for the user interface <b>400</b>. For example, a time percentage input box may be provided to enable protection against a time percentage of overcurrent condition for a predetermined time period.
p-0203Each circuit breaker operating mode, destructive overcurrent, time period overcurrent, or the like, may include input boxes for enabling or disabling the operating mode as well as providing alerts to the user.
p-0204In <figref idrefs="DRAWINGS">FIG. 34</figref>, a user interface for monitoring the power distribution unit <b>230</b> of <figref idrefs="DRAWINGS">FIG. 31</figref> is set forth and given the general reference character <b>500</b>. User interface <b>500</b> may be a user interface on computer <b>250</b> of <figref idrefs="DRAWINGS">FIG. 31</figref>, for example.
p-0205Referring now to <figref idrefs="DRAWINGS">FIG. 5</figref> in conjunction with <figref idrefs="DRAWINGS">FIG. 31</figref>, user interface <b>500</b> may include columns (<b>510</b> to <b>570</b>) of user information and icons for enabling functions.
p-0206Column <b>510</b> may include numbers for identifying the location of the power distribution outlet (PDO-<b>1</b> to PDO-<b>8</b>) that the user information and icons on the row may correspond.
p-0207Column <b>520</b> may include an icon for identifying whether or not the corresponding power distribution outlet (PDO-<b>1</b> to PDO-<b>8</b>) is on, off, or tripped, as just a few examples. The icons of column <b>520</b> may have a different color to indicate a condition of the power distribution outlet (PDO-<b>1</b> to PDO-<b>8</b>). For example, green may indicate “on”, black may indicate “off”, and red may indicate “tripped”.
p-0208Column <b>530</b> may include an icon for manually turning on a corresponding power distribution outlet (PDO-<b>1</b> to PDO-<b>8</b>). Column <b>540</b> may include an icon for manually turning off a corresponding power distribution outlet (PDO-<b>1</b> to PDO-<b>8</b>). When a power distribution outlet (PDO-<b>1</b> to PDO-<b>8</b>) is in a “tripped” condition, it may be required to mouse click on the “OFF” icon before mouse clicking on the “ON” icon to reset the switching circuit <b>330</b> so that the power distribution outlet (PDO-<b>1</b> to PDO-<b>8</b>) is reset to “on”.
p-0209Column <b>550</b> may include a clock icon. By mouse clicking on the clock icon, a window may be open that can allow you to program a time schedule for the corresponding power distribution outlet (PDO-<b>1</b> to PDO-<b>8</b>). A time schedule may include turning on and turning off selected power distribution outlets (PDO-<b>1</b> to PDO-<b>8</b>) at predetermined time periods in a day.
p-0210Column <b>560</b> may include a name for a corresponding power distribution outlet (PDO-<b>1</b> to PDO-<b>8</b>). The name may be, for example, the name of the load device (LD<b>1</b> to LD<b>8</b>), such as printer, server, router, as just a few examples. In this way, the user may more conveniently identify the load device (LD<b>1</b> to LD<b>8</b>) for which the user information and icons for enabling functions may correspond.
p-0211Column <b>570</b> may include values of current flowing through each circuit breaker unit (CB<b>1</b> to CB<b>8</b>), which can correspond to current flowing between each power distribution outlet (PDO-<b>1</b> to PDO-<b>8</b>) and respective load device (LD<b>1</b> to LD<b>8</b>).
p-0212It is understood that although “mouse clicking” has been used as an example for selecting features on the user interfaces (<b>400</b> and <b>500</b>) any input device may be used, for example, a keyboard, a touch screen pointer, or the like.
p-0213Although the user interface of <figref idrefs="DRAWINGS">FIG. 34</figref> illustrates a status of power distribution outlets (PDO-<b>1</b> to PDO-<b>8</b>) in a graphical form, simple text may be used as well. For example, a “tripped” condition may be indicated with the word “trip” next to the corresponding power distribution outlet (PDO-<b>1</b> to PDO-<b>8</b>) label.
p-0214The embodiment of <figref idrefs="DRAWINGS">FIG. 31</figref> may be used in conjunction with other circuit protection. For example, circuit protection for a wall outlet (<b>210</b>) may already be provided at a circuit breaker box. However, with the embodiment of <figref idrefs="DRAWINGS">FIG. 31</figref>, individual cord connected devices may have customized protection. For example, a breaker box may have a breaker rated at 15 Amps, but with the embodiment of <figref idrefs="DRAWINGS">FIG. 31</figref>, a load device (LD<b>1</b> to LD<b>8</b>) may have customized protection of 5 Amps. Such customized protection may be needed, for example, in a computer system or the like.
p-0215The apparatus <b>200</b> of <figref idrefs="DRAWINGS">FIG. 31</figref> may prevent catastrophic current from one load device (LD<b>1</b> to LD<b>8</b>) from causing a circuit breaker to “trip” and interrupt power to all the load devices as in the prior art. Instead, only the power distribution outlet (PDO-<b>1</b> to PDO-<b>8</b>) which is providing power to the load device (LD<b>1</b> to LD<b>8</b>) having the catastrophic current will have power interrupted. This can be desirable in, for example, a series of network devices all plugged into the PDU <b>230</b>. In this way, only the offending network device will have power interrupted and employee downtime may be reduced or eliminated.
p-0216Apparatus <b>200</b> may include other advantages. For example, when a hardware upgrade occurs and a newly connected load device (LD<b>1</b> to LD<b>8</b>) draws a larger current, problems may occur with the conventional approach of <figref idrefs="DRAWINGS">FIG. 30</figref>. For example, if five load devices (LD<b>1</b> to LD<b>5</b>) are connected to PDU <b>230</b> and each load device draws 3 amps and the outlet is protected at 15 amps. Then, load device LD<b>5</b> is changed to a load device that draws 5 amps. With apparatus <b>200</b>, only the newly connected load device LD<b>5</b> may have power interrupted.
p-0217A circuit protection system as in apparatus <b>200</b> may be used to protect power supplies. As one example, a plurality of supplies may be used to provide current to a shared load that draws more current than a single supply can provide. By providing a circuit breaker unit (CB<b>1</b> to CB<b>8</b>) to each power supply, the power supplies may be protected. For example, if one power supply goes bad, all the other power supplies may be protected by programming the programmable current characteristics so that each individual circuit breaker unit (CB<b>1</b> to CB<b>8</b>) disconnects the power supply from the load if an overcurrent condition exists. In this way, all the power supplies may be protected.
p-0218In another case, a PDU may be connected to an outlet that can provide more current than the rating of the PDU. In this case, PDU <b>230</b> may be used and it can provide adequate self protection by properly programming the programmable current characteristics.
p-0219It is understood that the embodiments described above are exemplary and the present invention should not be limited to those embodiments. Specific structures should not be limited to the described embodiments.
p-0220For example, in the embodiment of <figref idrefs="DRAWINGS">FIGS. 31 and 32</figref>, a power supply of 120 VAC is received at input terminal <b>232</b>. However, a power supply may be 240 VAC. In this case, two “hot” wires may be used and switching circuit <b>320</b> may provide a switch for both “hot” wires. In another example, a DC voltage may be provided. In this case, a switching circuit <b>320</b> may only provide a switch to the power supply voltage (VDD). Also, in the case of a DC voltage, parametric calculations may not be necessary for processing unit <b>236</b> to perform.
p-0221Referring now to <figref idrefs="DRAWINGS">FIG. 35</figref>, a graph is set forth illustrating one operating mode for embodiments of the invention. <figref idrefs="DRAWINGS">FIG. 35</figref> includes a waveform CB that represents the operation of a circuit breaker for an individual outlet or bank of outlets. Waveform IOUT shows a current output from such a circuit breaker. A current value IHI represents a programmed high limit, and is understood to be selectable by a user.
p-0222Referring still to <figref idrefs="DRAWINGS">FIG. 35</figref>, at time t<b>0</b>, current IOUT exceeds a programmed high limit IHI. Such a current value is detected for a given outlet/bank, compared by operation of software to the programmable limit IHI. Because the limit is exceeded, a “trip” value can be generated. As but one example, a processor may write a predetermined byte value to a register that indicates a trip operation. In response to such a value, a switching circuit opens the current path(s) for the outlet/bank.
p-0223Referring now to <figref idrefs="DRAWINGS">FIG. 36</figref>, a graph is set forth illustrating another operating mode for embodiments of the invention. <figref idrefs="DRAWINGS">FIG. 36</figref> includes the same general waveforms as <figref idrefs="DRAWINGS">FIG. 35</figref>. In addition, <figref idrefs="DRAWINGS">FIG. 36</figref> also shows a waveform FLAG HI that can represent a flag that indicates when a current value first exceeds a limit. However, unlike the arrangement of <figref idrefs="DRAWINGS">FIG. 35</figref>, in the operation of <figref idrefs="DRAWINGS">FIG. 36</figref> a PDU (e.g., <b>230</b>) includes a programmable grace period (tgrace). A circuit breaker for an outlet/bank will only be tripped if the current value remains over the limit for the entire grace period.
p-0224Referring still to <figref idrefs="DRAWINGS">FIG. 36</figref>, at time t<b>0</b>, current IOUT exceeds a programmed high limit IHI. As a result, flag value FLAG HI is set (represented by a “1”).
p-0225At time t<b>1</b>, current IOUT falls below limit IHI prior to expiration of grace period (tgrace). Consequently, flag value FLAG HI is reset (represented by a return to “0”).
p-0226At time t<b>2</b>, current IOUT once again exceeds a programmed high limit IHI. As a result, flag value FLAG HI is once again set (represented by a “1”).
p-0227At time t<b>3</b>, current IOUT remains above limit IHI and the grace period has expired (i.e., flag value FLAG HI is still set). As a result, a circuit breaker can be tripped.
p-0228Referring now to <figref idrefs="DRAWINGS">FIG. 37</figref>, a graph is set forth illustrating yet another operating mode for embodiments of the invention. <figref idrefs="DRAWINGS">FIG. 37</figref> includes the same general waveforms as <figref idrefs="DRAWINGS">FIG. 36</figref>. In addition, <figref idrefs="DRAWINGS">FIG. 37</figref> also shows a waveform FLAG LOW that can represent a flag indicating when a current value falls below a low current limit (ILOW), and a waveform LOW WARNING that can indicate a warning issued by a PDU. Unlike the arrangement of <figref idrefs="DRAWINGS">FIG. 36</figref>, in the operation of <figref idrefs="DRAWINGS">FIG. 37</figref> a PDU further includes a low programmable grace period (tgraceL). In the very particular example, a circuit breaker for an outlet/bank will provide a warning if the current value remains under the low limit for a low grace period (tgraceL).
p-0229Referring still to <figref idrefs="DRAWINGS">FIG. 37</figref>, at time t<b>0</b>, current IOUT exceeds a programmed high limit IHI. As a result, flag value FLAG HI is set (represented by a “1”).
p-0230At time t<b>1</b>, current IOUT falls below high programmed limit IHI. As a result, flag value FLAG HI is reset (represented by a return to “0”).
p-0231At time t<b>2</b>, current IOUT falls below low programmed limit ILOW. As a result, flag value FLAG LOW is set (represented by a “1”).
p-0232At time t<b>3</b>, current IOUT remains below limit ILOW and the low grace period (tgraceL) has expired (i.e., flag value FLAG LOW is still set). As a result, a low current warning can be issued.
p-0233Having described the structure and operation of various embodiments, methods according to the present invention will now be described.
p-0234Referring now to <figref idrefs="DRAWINGS">FIG. 38</figref>, one example of a method according to the present invention is set forth in a flow diagram and designated by the general reference character <b>900</b>. A method <b>900</b> can include programming high and low limits for all power distribution outlets of a PDU (step <b>902</b>). As but one example, such a method can include programming a PDU by way of an interface, as described above. In the very particular example of <figref idrefs="DRAWINGS">FIG. 38</figref>, current values for each separate power distribution outlet (referred to herein as “outlet”) may be examined sequentially, thus an outlet count variable can be initialized (step <b>904</b>). Of course, the invention should not be construed as being limited to sequential examination/evaluation of outlet current values.
p-0235A method <b>900</b> can continue by acquiring a current for a given outlet (step <b>906</b>). Such a step can include any of the various methods noted above, and preferably includes capturing such a value in digital form.
p-0236A current value for a power distribution outlet may then be compared to a low limit (step <b>908</b>). Such a step is preferably performed with software. If an outlet current value (IOUT) is above a low limit (ILOW), a low flag and low timer can be cleared (if not already cleared) (steps <b>910</b> and <b>912</b>). If an outlet current value (IOUT) is below a low limit (ILOW), a low flag for the outlet can be examined (step <b>914</b>).
p-0237If the outlet has not been previously flagged low, a low flag and low timer for the outlet can be set (steps <b>916</b> and <b>918</b>). Setting a low timer can start a low grace period. If the outlet has been previously flagged low, the outlet is in a low grace period. A method <b>900</b> can then examine if the low grace period has expired (step <b>920</b>). If a low grace period has expired, a method can take a predetermined action. In this case, such an action includes issuing a low warning (step <b>922</b>). Of course, other actions could be taken.
p-0238In this way, separate power distribution outlets of the same PDU can be examined for a low current condition, and action taken when a low current condition exists.
p-0239A method <b>900</b> may then proceed to examine a selected outlet for a high current condition (step <b>924</b>). Such a step is preferably performed with software. If an outlet current value (IOUT) is below a high limit (IHI), a high flag and high timer can be cleared (if not already cleared) (steps <b>926</b> and <b>928</b>). If an outlet current value (IOUT) is above a high limit (IHI), a high flag for the outlet can be examined (step <b>924</b>).
p-0240If the outlet has not been previously flagged high, a high flag and high timer for the outlet can be set (steps <b>931</b> and <b>932</b>). Setting a high timer can start a high grace period. If, however, the outlet has been previously flagged high, the outlet is in a high grace period. A method <b>900</b> can then examine if the high grace period has expired (step <b>934</b>). If a high grace period has expired, a method <b>900</b> can take a predetermined action. In this case, such an action includes tripping a circuit breaker for such an outlet (step <b>936</b>). Of course, other actions could be taken, including a warning, for example.
p-0241In this way, separate power distribution outlets of the same PDU can be examined for a high current condition, and action taken when a high current condition exists.
p-0242A method <b>900</b> can further include incrementing timers <b>938</b>. In this way, high and/or low grace periods can continue to run.
p-0243A method <b>900</b> may then continue cycling, through examination of each outlet current by proceeding to a next outlet of the PDU, or returning to a first outlet of the PDU (steps, <b>940</b>, <b>942</b> and <b>944</b>).
p-0244The present invention can include monitoring/controlling on a bank-by-bank or unit basis, in addition to an outlet-by-outlet basis. One example of such a method is shown in <figref idrefs="DRAWINGS">FIG. 39</figref> and designated by the general reference character <b>1000</b>. A method <b>1000</b> can include programming a high limit for a PDU and for all banks within a PDU (step <b>1002</b>). As but one example, such a method can include programming a PDU by way of an interface, as described above.
p-0245In the very particular example of <figref idrefs="DRAWINGS">FIG. 39</figref>, a current value for an overall PDU (i.e., unit) may first be examined (step <b>1004</b>). Thus, a method <b>1000</b> can continue by acquiring a total current for a PDU (step <b>1006</b>). Such a step can include any of the various methods noted above (e.g., totaling individual outlet and/or bank values, or separately acquiring such a value). Preferably, a step <b>1006</b> includes capturing such a value in digital form.
p-0246A method <b>1000</b> may then continue in the same general fashion as method <b>900</b>, but with respect to a unit current value. A current value may then be compared to a high current limit (step <b>1006</b>). Such a step is preferably performed with software. If the total current value (ITOT) is lower than a high limit (U_Hi), a high flag and high timer can be cleared (if not already cleared (steps <b>1008</b> and <b>1010</b>). If the total current value (ITOT) is lower than a high limit (U_Hi), a high flag can be examined (step <b>1012</b>).
p-0247If the high flag had not been previously set high, the high flag and high timer for the bank or unit can be set (steps <b>1014</b> and <b>1016</b>). Setting the high timer can start a high grace period. If the high flag has previously been set high, the power distribution bank or unit is already in a high grace period. A method <b>1000</b> may then examine whether the high grace period has expired (step <b>1018</b>).
p-0248However, as shown by step <b>1020</b>, in the event of a high current condition, a method <b>1000</b> may include issuing a warning in addition to, or instead of, tripping a breaker for a unit.
p-0249A method <b>1000</b> may then proceed by comparing bank current values to predetermined limits. In the very particular example of <figref idrefs="DRAWINGS">FIG. 39</figref>, current values for each separate bank may be examined sequentially (step <b>1024</b>), thus a bank count variable can be initialized (step <b>1022</b>). Of course, the invention should not be construed as being limited to sequential examination/evaluation of bank current values.
p-0250A method <b>1000</b> can continue by acquiring a total current for a bank (step <b>1026</b>). Such a step can include any of the various methods noted above (e.g., totaling individual outlet values, or separately acquiring such a value). Preferably, a step <b>1026</b> includes capturing such a value in digital form.
p-0251A method <b>1000</b> may then continue in the same general fashion as method <b>900</b>, but with respect to bank current values. In step <b>1028</b>, the high bank flag and high bank timer may be cleared if the bank current does not exceed the high bank current in a comparison step (step <b>1026</b>). However, if the comparison step (step <b>1026</b>) indicates that the bank current exceeds the high bank current, then a check may be made to see if the particular bank has already been flagged high (step <b>1032</b>). If the high bank current has not previously been set high, then steps <b>1034</b> and <b>1036</b>, may set the high bank current and high bank timer. If the high bank timer had already been set high, a check may be made to see if the high bank timer has expired (step <b>1038</b>).
p-0252If the high bank timer has expired, step <b>1040</b> may be performed. As shown by step <b>1040</b>, in the event of a high current condition, a method <b>1000</b> may include issuing a warning in addition to, or instead of, tripping a breaker for a bank.
p-0253If the high bank timer has not expired, step <b>1042</b> increments the high bank timer. Method <b>1000</b> may continue cycling through information of each current bank by proceeding to a next bank of outlets in the PDU (steps <b>1044</b> and <b>1046</b>). If the banks have been examined, the total PDU current may then be or individual outlets may be sampled again as the method <b>1000</b> may proceed to step <b>1048</b>.
p-0254<figref idrefs="DRAWINGS">FIG. 39</figref> also illustrates how an outlet comparison flow can be incorporated into a unit/bank comparison flow. Thus, box <b>1048</b> can include an outlet examination method, such as that shown in <figref idrefs="DRAWINGS">FIG. 38</figref>, as but one example.
p-0255An example of a software program function that may include the various features shown in <figref idrefs="DRAWINGS">FIGS. 38 and 39</figref> is listed below. The software program may be stored in memory <b>238</b>, as but one example.
p-0256<tables id="TABLE-US-00003" num="00003"><table frame="none" colsep="0" rowsep="0" pgwide="1"><tgroup align="left" colsep="0" rowsep="0" cols="1"><colspec colname="1" colwidth="273pt" align="left" /><thead><row><entry namest="1" nameend="1" align="center" rowsep="1" /></row></thead><tbody valign="top"><row><entry>/* --------------------------------------------------------------</entry></row><row><entry> Copyright © 2003 - 2004 by Cyber Switching Inc. ALL RIGHTS RESERVED.</entry></row><row><entry> ------------------------------------------------------------- */</entry></row><row><entry>void OutletCurrentBoundTrapHandler(void)</entry></row><row><entry>{</entry></row><row><entry> auto unsigned int i;</entry></row><row><entry> auto char tonum[6];</entry></row><row><entry> auto char tcurrent[8];</entry></row><row><entry> auto char tsetcurrent[8];</entry></row><row><entry> auto float tfcurrent;</entry></row><row><entry> if(unitcurrenterrortraptimeout != 0)</entry></row><row><entry> {</entry></row><row><entry> if(gchk_timeout(unitcurrenterrortraptimeout))</entry></row><row><entry> unitcurrenterrortraptimeout = 0;</entry></row><row><entry> }</entry></row><row><entry> if(unitcurrentwarningtraptimeout != 0)</entry></row><row><entry> {</entry></row><row><entry> If(gchk_timeout(unitcurrentwarningtraptimeout))</entry></row><row><entry> unitcurrentwarningtraptimeout = 0;</entry></row><row><entry> }</entry></row><row><entry> tfcurrent = GetTotalCurrent( );</entry></row><row><entry> if(tfcurrent > UNIT_CURRENT_CAPACITY)</entry></row><row><entry> {</entry></row><row><entry> if(unitcurrenterrortraptimeout == 0)</entry></row><row><entry> {</entry></row><row><entry> sprintf(tcurrent,“%4.1f”,tfcurrent);</entry></row><row><entry> sprintf(tsetcurrent,“%4.1f”,BANK_CURRENT_CAPACITY);</entry></row><row><entry> AddLogEntry(LOGEVENT_ERRORUNITCURRENT,tcurrent,tsetcurrent,NULL); //</entry></row><row><entry>Log high current violation.</entry></row><row><entry> TrapMyBitsUp(TRAP_UNITCURRENTCRITICAL,i);</entry></row><row><entry> unitcurrenterrortraptimeout = MS_TIMER+10000; // 10</entry></row><row><entry>seconds to next trap.</entry></row><row><entry> }</entry></row><row><entry> }</entry></row><row><entry> if(tfcurrent > UNIT_WARNING_CAPACITY)</entry></row><row><entry> {</entry></row><row><entry> if(unitcurrentwarningtraptimeout == 0)</entry></row><row><entry> {</entry></row><row><entry> sprintf(tcurrent,“%4.1f”,tfcurrent);</entry></row><row><entry> sprintf(tsetcurrent,“%4.1f”,BANK_CURRENT_CAPACITY);</entry></row><row><entry> AddLogEntry(LOGEVENT_WARUNITCURRENT,tcurrent,tsetcurrent,NULL); //</entry></row><row><entry>Log high current violation.</entry></row><row><entry> TrapMyBitsUp(TRAP_UNITCURRENTWARNING,i);</entry></row><row><entry> unitcurrentwarningtraptimeout = MS_TIMER+60000; // 60</entry></row><row><entry>seconds to next trap.</entry></row><row><entry> }</entry></row><row><entry> }</entry></row><row><entry> for(i = 0; i < NUM_BANKS; i++)</entry></row><row><entry> {</entry></row><row><entry> if(bankcurrenterrortraptimeout[i] != 0)</entry></row><row><entry> {</entry></row><row><entry> if(gchk_timeout(bankcurrenterrotraptimeout[i]))</entry></row><row><entry> bankcurrenterrortraptimeout[i] = 0;</entry></row><row><entry> }</entry></row><row><entry> if(bankcurrentwarningtraptimeout[i] != 0)</entry></row><row><entry> {</entry></row><row><entry> if(gchk_timeout(bankcurrentwarningtraptimeout[i]))</entry></row><row><entry> bankcurrentwarningtraptimeout[i] = 0;</entry></row><row><entry> }</entry></row><row><entry> tfcurrent = GetBankCurrent(i);</entry></row><row><entry> if(tfcurrent > BANK_CURRENT_CAPACITY)</entry></row><row><entry> {</entry></row><row><entry> if(bankcurrenterrortraptimeout[i] == 0)</entry></row><row><entry> {</entry></row><row><entry> sprintf(tonum,“% d”,i+1); // Bank Number</entry></row><row><entry> sprintf(tcurrent,“%4.1f”,tfcurrent);</entry></row><row><entry> sprintf(tsetcurrent,“%4.1f”,BANK_CURRENT_CAPACITY);</entry></row><row><entry> AddLogEntry(LOGEVENT_ERRORBANKCURRENT,tonum,tcurrent,tsetcurrent);</entry></row><row><entry> // Log high current violation.</entry></row><row><entry> TrapMyBitsUp(TRAP_BANKCURRENTCRITICAL,i);</entry></row><row><entry> bankcurrenterrortraptimeout[i] = MS_TIMER+10000; //</entry></row><row><entry>10 seconds to next trap.</entry></row><row><entry> }</entry></row><row><entry> }</entry></row><row><entry> else if(tfcurrent > BANK_WARNING_CAPACITY)</entry></row><row><entry> {</entry></row><row><entry> if(bankcurrentwarningtraptimeout[i] == 0)</entry></row><row><entry> {</entry></row><row><entry> sprintf(tonum,“%d”,i+1); // Bank Number</entry></row><row><entry> sprintf(tcurrent,“%4.1f”,tfcurrent);</entry></row><row><entry> sprintf(tsetcurrent,“%4.1f”,BANK_WARNING_CAPACITY);</entry></row><row><entry> AddLogEntry(LOGEVENT_WARNBANKCURRENT,tonum,tcurrent,tsetcurrent); //</entry></row><row><entry>Log high current violation.</entry></row><row><entry> TrapMyBitsUp(TRAP_BANKCURRENTWARNING,i);</entry></row><row><entry> bankcurrentwarningtraptimeout[i] = MS_TIMER+60000;</entry></row><row><entry>// 60 seconds to next trap.</entry></row><row><entry> }</entry></row><row><entry> }</entry></row><row><entry> }</entry></row><row><entry> for(i = 0; i < MAX_OUTLET_NUM; i++)</entry></row><row><entry> {</entry></row><row><entry> if(boundtrapenables[i]&LOBOUNDTRAP_ENABLE)</entry></row><row><entry> {</entry></row><row><entry> if(GetOutletCurrent(i+1) < ocurrentlow[i])</entry></row><row><entry> {</entry></row><row><entry> if(boundtraplotimeouts[i] != 0)</entry></row><row><entry> {</entry></row><row><entry> if(gchk_timeout(boundtraplotimeouts[i]))</entry></row><row><entry> {</entry></row><row><entry> sprintf(tonum,“%d”,i+1);</entry></row><row><entry> sprintf(tcurrent,“%4.1f”,GetOutletCurrent(i+1));</entry></row><row><entry> sprintf(tsetcurrent,“%4.1f”,ocurrentlow[i]);</entry></row><row><entry> AddLogEntry(LOGEVENT_LOWCURRENT,tonum,tcurrent,tsetcurrent); //</entry></row><row><entry>Log low current violation.</entry></row><row><entry> TrapMyBitsUp(TRAP_OUTLETLOWCURRENTWARNING,i);</entry></row><row><entry> boundtrapenables[i] |=</entry></row><row><entry>LOBOUNDTRAP_TRAPPED; // set trapped flag.</entry></row><row><entry> boundtraplotimeouts[i] = 0;</entry></row><row><entry> }</entry></row><row><entry> }</entry></row><row><entry> else if(!(boundrapenables[i]&LOBOUNDTRAP_TRAPPED))</entry></row><row><entry> {</entry></row><row><entry> boundtraplotimeouts[i] =</entry></row><row><entry>MS_TIMER+boundtraplograce[i];</entry></row><row><entry> if(!boundtraplotimeouts[i])</entry></row><row><entry> boundtraplotimeouts[i]++;</entry></row><row><entry> }</entry></row><row><entry> }</entry></row><row><entry> else</entry></row><row><entry> {</entry></row><row><entry> boundtraplotimeouts[i] = 0;</entry></row><row><entry> boundtrapenables[i] &= ~LOBOUNDTRAP_TRAPPED; //</entry></row><row><entry>Remove trapped flag.</entry></row><row><entry> }</entry></row><row><entry> }</entry></row><row><entry> if((boundtrapenables[i]&HIBOUNDTRAP_ENABLE) | | (boundtrapenables[i]&HIB</entry></row><row><entry>OUNDTRIP_ENABLE))</entry></row><row><entry> {</entry></row><row><entry> if(GetOutletCurrent(i+1) > ocurrenthi[i])</entry></row><row><entry> {</entry></row><row><entry> if(boundtraphitimeouts[i] != 0)</entry></row><row><entry> {</entry></row><row><entry> if(gchk_timeout(boundtraphitimeouts[i]))</entry></row><row><entry> {</entry></row><row><entry>#ifdef PLUS_MODEL</entry></row><row><entry> if(boundtrapenables[i]&HIBOUNDTRIP_ENABLE)</entry></row><row><entry> setOutletState(i+1,OS_TRIPPED);</entry></row><row><entry>#endif</entry></row><row><entry> sprintf(tonum,“%d”,i+1);</entry></row><row><entry> sprintf(tcurrent,“%4.1f”,GetOutletCurrent(i+1));</entry></row><row><entry> sprintf(tsetcurrent,“%4.1f”,ocurrenthi[i]);</entry></row><row><entry> AddLogEntry(LOGEVENT_HIGHCURRENT,tonum,tcurrent,tsetcurrent); //</entry></row><row><entry>Log high current violation;</entry></row><row><entry> if(boundtrapenables[i]&HIBOUNDTRAP_ENABLE)</entry></row><row><entry> TrapMyBitsUp(TRAP_OUTLETHIGHCURRENTWARNING,i);</entry></row><row><entry>#ifdef PLUS_MODEL</entry></row><row><entry> if(boundtrapenables[i]&HIBOUNDTRIP_ENABLE)</entry></row><row><entry> {</entry></row><row><entry> TrapMyBitsUp(TRAP_OUTLETTRIPPED,i);</entry></row><row><entry> AddLogEntry(LOGEVENT_OUTLETTRIPPED,tonum,NULL,NULL); // Log outlet</entry></row><row><entry>trip.</entry></row><row><entry> }</entry></row><row><entry>#endif</entry></row><row><entry> boundtrapenables[i] |=</entry></row><row><entry>HIBOUNDTRAP_TRAPPED; // set trapped flag.</entry></row><row><entry> boundtraphitimeouts[i] = 0;</entry></row><row><entry> }</entry></row><row><entry> }</entry></row><row><entry> else if(!(boundtrapenables[i]&HIBOUNDTRAP_TRAPPED))</entry></row><row><entry> {</entry></row><row><entry> boundtraphitimeouts[i] =</entry></row><row><entry>MS_TIMER+boundtraphigrace[i];</entry></row><row><entry> if(!boundtraphitimeouts[i])</entry></row><row><entry> boundtraphitimeouts[i]++;</entry></row><row><entry> }</entry></row><row><entry> }</entry></row><row><entry> else</entry></row><row><entry> {</entry></row><row><entry> boundtraphitimeouts[i] = 0;</entry></row><row><entry> boundtrapenables[i]&= ~HIBOUNDTRAP_TRAPPED; //</entry></row><row><entry>Remove trapped flag.</entry></row><row><entry> }</entry></row><row><entry> }</entry></row><row><entry> }</entry></row><row><entry>}</entry></row><row><entry namest="1" nameend="1" align="center" rowsep="1" /></row></tbody></tgroup></table></tables>
p-0257It is understood the above embodiments and portions thereof have been set forth in flow diagrams and a particular computer language, this should not be construed as limiting the invention thereto. One skilled in the art could arrive at alternate arrangements utilizing other programming language, including but not limited to all C variants (e.g., C++), Java, etc. and resulting compiled forms. Further, such embodiments may also comprise hardware design languages, including but not limited to Verilog and VHDL.
p-0258In addition, it is understood that other embodiments of this invention may be practiced in the absence of an element/step not specifically disclosed herein. Thus, while methods have been illustrated that include a grace period for high and/or low events, alternate embodiments may not include such grace periods. Further, alternate embodiments may include multiple limits, some which include grace periods and others that do not.
p-0259While 8 load devices have been shown, any number of devices can be used in connection with this invention. Similarly, while a network <b>240</b> has been shown, computer <b>250</b> can communicate directly with one or more of: port <b>234</b>, processing unit <b>236</b>, and/or memory with software <b>238</b>.
p-0260Accordingly, while the various particular embodiments set forth herein have been described in detail, the present invention could be subject to various changes, substitutions, and alterations without departing from the spirit and scope of the invention. Accordingly, the present invention is intended to be limited only as defined by the appended claims.
Contents7
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Titles
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- Current protection apparatus and method
Patent term adjustment
- A delay
- +235 daysthe office missed an examination deadline
- Net adjustment
- 235 days
Classification
- CPC, 2
- G06F1/266
- G06F1/30
- IPC, 3
- H02H3 08
- H02H9 02
- H02H9 08
- USPC, 4
- 361093100
- 361093500
- 361093700
- 361093900